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Author SHA1 Message Date
Adam Honse 8e89d82c24 Check for local server before detecting devices from hardware 2020-06-27 17:32:01 -05:00
439 changed files with 7445 additions and 55550 deletions
+9 -107
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@@ -4,10 +4,6 @@
# https://www.kittell.net/code/powershell-unix-sed-equivalent-change-text-file/
# https://powershell.org/forums/topic/how-to-use-ansi-vt100-formatting-in-powershell-ooh-pretty-colors/
#-----------------------------------------------------------------------#
# OpenRGB GitLab CI Configuration #
#-----------------------------------------------------------------------#
.shared_windows_runners:
tags:
- shared-windows
@@ -20,26 +16,7 @@ stages:
before_script:
- echo "started by ${GITLAB_USER_NAME}"
#-----------------------------------------------------------------------#
# Linux (AppImage) 32-bit Build Target #
#-----------------------------------------------------------------------#
build_linux_32:
image: i386/ubuntu:bionic
stage: build
script:
- apt update
- apt install -y build-essential qtcreator qt5-default libusb-1.0-0-dev libhidapi-dev pkgconf wget git
- ./scripts/build-appimage-32.sh
artifacts:
paths:
- OpenRGB-i386.AppImage
expire_in: 30 days
#-----------------------------------------------------------------------#
# Linux (AppImage) 64-bit Build Target #
#-----------------------------------------------------------------------#
build_linux_64:
build_linux:
image: ubuntu:bionic
stage: build
script:
@@ -50,84 +27,9 @@ build_linux_64:
artifacts:
paths:
- OpenRGB-x86_64.AppImage
expire_in: 30 days
#-----------------------------------------------------------------------#
# Windows (32-bit) Build Target #
#-----------------------------------------------------------------------#
build_windows_32:
extends:
- .shared_windows_runners
stage: build
script:
- $esc = "$([char]27)"
- $count = 0
- function _unix_tmsec_ { [int64](([datetime]::UtcNow)-(get-date "1/1/1970")).TotalSeconds }
- function _fold_start_ { param( [string]$TEXT_TAG ) $t=_unix_tmsec_; $global:count += 1; Write-Host -NoNewLine "`r`n`r`nsection_start:${t}:sect_${count}`r${esc}[0K${esc}[33m${TEXT_TAG}${esc}[39m`r`n"; }
- function _fold_final_ { $t=_unix_tmsec_; Write-Host -NoNewLine "`r`n`r`nsection_end:${t}:sect_${count}`r${esc}[0K`r`n" ; }
expire_in: 1337 years
- _fold_start_ 'configuring the msvc environment variables'
- Push-Location "C:/Program Files (x86)/Microsoft Visual Studio/2019/BuildTools/VC/Auxiliary/Build"
- '& cmd.exe /C "vcvarsall.bat x86 & set" | Foreach-Object { if ($_ -match "(.*?)=(.*)") { Set-Item -force -path "Env:\$($matches[1])" -value "$($matches[2])" } }'
- Pop-Location
- _fold_final_
- _fold_start_ 'downloading precompiled versions of qtbase, qttools (for windeployqt) and jom (for a more parallel nmake)'
- mkdir _qt
- mkdir _qt_download
- Push-Location _qt_download
- curl.exe -LJ -o qt-base.7z 'https://download.qt.io/online/qtsdkrepository/windows_x86/desktop/qt5_5150/qt.qt5.5150.win32_msvc2019/5.15.0-0-202005150700qtbase-Windows-Windows_10-MSVC2019-Windows-Windows_10-X86.7z'
- curl.exe -LJ -o qt-tools.7z 'https://download.qt.io/online/qtsdkrepository/windows_x86/desktop/qt5_5150/qt.qt5.5150.win32_msvc2019/5.15.0-0-202005150700qttools-Windows-Windows_10-MSVC2019-Windows-Windows_10-X86.7z'
- curl.exe -LJ -o qt-jom.zip 'https://download.qt.io/official_releases/jom/jom.zip'
- _fold_final_
- _fold_start_ 'extracting the downloaded qt binaries'
- 7z x qt-base.7z '-o../_qt' -y
- 7z x qt-tools.7z '-o../_qt' -y
- 7z x qt-jom.zip '-o../_qt' -y
- _fold_final_
- _fold_start_ 'turn the qt install from enterprise to foss; remove the licensing checks'
- ${qconfig-pri-folder} = '..\_qt\5.15.0\msvc2019\mkspecs\qconfig.pri'
- (Get-Content ${qconfig-pri-folder}).replace('QT_EDITION = Enterprise', 'QT_EDITION = OpenSource') | Set-Content ${qconfig-pri-folder}
- (Get-Content ${qconfig-pri-folder}).replace('QT_LICHECK = licheck.exe', '') | Set-Content ${qconfig-pri-folder}
- Pop-Location
- _fold_final_
- _fold_start_ 'run qmake and generate the msvc nmake makefile'
- mkdir _build; cd _build
- ..\_qt\5.15.0\msvc2019\bin\qmake ..\OpenRGB.pro
- _fold_final_
- _fold_start_ 'start the actual build with jom instead of nmake; for speed'
- ..\_qt\jom
- _fold_final_
- _fold_start_ 'run windeployqt to automatically copy the needed dll files'
- ..\_qt\5.15.0\msvc2019\bin\windeployqt --no-angle --no-translations --no-opengl-sw --no-system-d3d-compiler --no-compiler-runtime --no-webkit2 .\release\
- _fold_final_
- _fold_start_ 'compressing the release folder so that we can upload it as artifact'
- mv release 'OpenRGB Windows 32-bit'
- ${datetime} = Get-Date ([datetime]::UtcNow) -Format "yyyy-MM-ddTHH-mm-ss"
- ${revision} = ((git rev-parse --short HEAD) | Out-String).Trim()
- ${rversion} = (((Get-Content '..\OpenRGB.pro' | Select-String -Pattern "VERSION =") | Out-String).Trim().Split("="))[1].Trim()
- 7z a -mx9 -r -y "OpenRGB_${rversion}_32_${revision}_nightly_${datetime}.7z" 'OpenRGB Windows 32-bit'
- _fold_final_
# cache:
# key: same-key
# paths:
# - C:\vcpkg\installed\
artifacts:
paths:
- _build/*.7z
expire_in: 30 days
#-----------------------------------------------------------------------#
# Windows (64-bit) Build Target #
#-----------------------------------------------------------------------#
build_windows_64:
build_windows:
extends:
- .shared_windows_runners
stage: build
@@ -149,8 +51,8 @@ build_windows_64:
- mkdir _qt
- mkdir _qt_download
- Push-Location _qt_download
- curl.exe -LJ -o qt-base.7z 'https://download.qt.io/online/qtsdkrepository/windows_x86/desktop/qt5_5150/qt.qt5.5150.win64_msvc2019_64/5.15.0-0-202005150700qtbase-Windows-Windows_10-MSVC2019-Windows-Windows_10-X86_64.7z'
- curl.exe -LJ -o qt-tools.7z 'https://download.qt.io/online/qtsdkrepository/windows_x86/desktop/qt5_5150/qt.qt5.5150.win64_msvc2019_64/5.15.0-0-202005150700qttools-Windows-Windows_10-MSVC2019-Windows-Windows_10-X86_64.7z'
- curl.exe -LJ -o qt-base.7z 'https://download.qt.io/online/qtsdkrepository/windows_x86/desktop/qt5_5150/qt.qt5.5150.win64_msvc2017_64/5.15.0-0-202002260536qtbase-Windows-Windows_10-MSVC2017-Windows-Windows_10-X86_64.7z'
- curl.exe -LJ -o qt-tools.7z 'https://download.qt.io/online/qtsdkrepository/windows_x86/desktop/qt5_5150/qt.qt5.5150.win64_msvc2017_64/5.15.0-0-202002260536qttools-Windows-Windows_10-MSVC2017-Windows-Windows_10-X86_64.7z'
- curl.exe -LJ -o qt-jom.zip 'https://download.qt.io/official_releases/jom/jom.zip'
- _fold_final_
@@ -161,7 +63,7 @@ build_windows_64:
- _fold_final_
- _fold_start_ 'turn the qt install from enterprise to foss; remove the licensing checks'
- ${qconfig-pri-folder} = '..\_qt\5.15.0\msvc2019_64\mkspecs\qconfig.pri'
- ${qconfig-pri-folder} = '..\_qt\5.15.0\msvc2017_64\mkspecs\qconfig.pri'
- (Get-Content ${qconfig-pri-folder}).replace('QT_EDITION = Enterprise', 'QT_EDITION = OpenSource') | Set-Content ${qconfig-pri-folder}
- (Get-Content ${qconfig-pri-folder}).replace('QT_LICHECK = licheck.exe', '') | Set-Content ${qconfig-pri-folder}
- Pop-Location
@@ -169,7 +71,7 @@ build_windows_64:
- _fold_start_ 'run qmake and generate the msvc nmake makefile'
- mkdir _build; cd _build
- ..\_qt\5.15.0\msvc2019_64\bin\qmake ..\OpenRGB.pro
- ..\_qt\5.15.0\msvc2017_64\bin\qmake ..\OpenRGB.pro
- _fold_final_
- _fold_start_ 'start the actual build with jom instead of nmake; for speed'
@@ -177,7 +79,7 @@ build_windows_64:
- _fold_final_
- _fold_start_ 'run windeployqt to automatically copy the needed dll files'
- ..\_qt\5.15.0\msvc2019_64\bin\windeployqt --no-angle --no-translations --no-opengl-sw --no-system-d3d-compiler --no-compiler-runtime --no-webkit2 .\release\
- ..\_qt\5.15.0\msvc2017_64\bin\windeployqt --no-angle --no-translations --no-opengl-sw --no-system-d3d-compiler --no-compiler-runtime --no-webkit2 .\release\
- _fold_final_
- _fold_start_ 'compressing the release folder so that we can upload it as artifact'
@@ -194,4 +96,4 @@ build_windows_64:
artifacts:
paths:
- _build/*.7z
expire_in: 30 days
expire_in: 1337 years
-14
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@@ -1,14 +0,0 @@
<!--
Found a bug? Something isn't working as expected? To help us keep track of the requests please start the title with [Bug Report]
-->
### Description of Bug
<!--
Please describe the bug. Explain steps taken to reproduct the bug and what you expect the correct behavior to be.
-->
### Hardware Configuration
<!--
Please list the RGB hardware that you are using with OpenRGB. If your bug does not relate to any one particular device or device type, or if the bug is in a part of the code not directly interacting with hardware, this is optional.
-->
@@ -1,9 +0,0 @@
<!--
Have something you would like to see added to OpenRGB? Let us know here
To help us keep track of the requests please start the title with [Feature Request]
-->
### Feature Request
<!--
Please explain the new feature you would like to see added in detail. Explain how you think it should work and provide any mock-ups, code snippets, etc. that you think will help explain the feature.
-->
-46
View File
@@ -1,46 +0,0 @@
<!--
When naming the support request please title the request as
`[New Device] <Name of new device>`
Please open one issue per device you would lke to add
-->
### Name of device:
<!--
Please put the name of the product, including manufacturer, beneath this line
-->
### Link to manufacturer's product page:
<!--
Please link us to the manufacturer's product page beneath this line
-->
### Please select what type of device/interface the device uses:
- [ ] Motherboard (SMBus)
- [ ] Motherboard (USB)
- [ ] RAM (SMBus)
- [ ] GPU (I2C)
- [ ] External USB (Peripheral, lighting controller, etc)
- [ ] Internal USB (lighting controller, cooler, fan hub, etc)
- [ ] I don't know (we can help you determine this)
### ID information:
<!--
For PCI (GPU) devices we will need the Vendor ID, Device ID, Sub-Vendor ID and Sub-Device IDs
In Windows this can be found under the device manager and on Linux this can be found wit lspci -vv
For USB devices we will need the USB VID and PID
-->
### Please attach screenshots of the device's official control application here:
<!--
Screenshots of the official control software should show lists of supported modes, color selection, and zone/LED selection capabilities of the device's official software.
-->
### Please attach device captures here:
<!--
For information on how to capture device packets please see https://gitlab.com/Dr_No/OpenRGB/-/wikis/OpenRGB-doesn%27t-have-my-device
-->
-93
View File
@@ -19,11 +19,6 @@ KERNEL=="hidraw*", SUBSYSTEM=="hidraw", TAG+="uaccess"
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="2516", ATTR{idProduct}=="0051", TAG+="uaccess"
#---------------------------------------------------------------#
# Aorus Devices #
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="1044", ATTR{idProduct}=="7a42", TAG+="uaccess"
#---------------------------------------------------------------#
# ASUS Aura Core Devices #
#---------------------------------------------------------------#
@@ -48,17 +43,6 @@ SUBSYSTEMS=="usb", ATTR{idVendor}=="0b05", ATTR{idProduct}=="18f3", TAG+="uacces
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="2516", ATTR{idProduct}=="0109", TAG+="uaccess"
#---------------------------------------------------------------#
# Corsair Hydro Series Devices #
# #
# Corsair H100i Pro RGB #
# Corsair H115i Pro RGB #
# Corsair H150i Pro RGB #
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="1b1c", ATTR{idProduct}=="0c15", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1b1c", ATTR{idProduct}=="0c13", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1b1c", ATTR{idProduct}=="0c12", TAG+="uaccess"
#---------------------------------------------------------------#
# Corsair Lighting Node Devices #
# #
@@ -142,78 +126,12 @@ SUBSYSTEMS=="usb", ATTR{idVendor}=="0951", ATTR{idProduct}=="16be", TAG+="uacces
# #
# Mice: #
# Logitech G203 Prodigy #
# Logitech G203 Lightsync #
# Logitech G403 Prodigy #
# Logitech G403 Hero #
# Logitech G502 Proteus Spectrum #
# Logitech G Lightspeed Wireless Gaming Mouse #
# Logitech G Pro Wireless Gaming Mouse (Wired) #
# Logitech G Powerplay Mousepad with Lightspeed #
# #
# Keyboards: #
# Logitech G512 #
# Logitech G512 RGB #
# Logitech G810 #1 #
# Logitech G810 #2 #
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c084", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c092", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c083", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c08f", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c332", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c539", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c088", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c53a", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c342", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c33c", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c337", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="046d", ATTR{idProduct}=="c331", TAG+="uaccess"
#---------------------------------------------------------------#
# MSI Mysticlight #
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="3EA4", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="4559", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7B10", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7B93", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7B94", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7B96", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C34", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C35", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C36", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C37", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C42", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C56", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C59", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C60", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C67", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C70", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C71", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C73", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C75", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C76", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C77", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C79", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C80", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C81", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C82", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C83", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C84", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C85", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C86", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C87", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C88", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C89", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C90", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C91", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C92", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C94", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C95", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C96", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C98", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="7C99", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="1462", ATTR{idProduct}=="905D", TAG+="uaccess"
#---------------------------------------------------------------#
# MSI/SteelSeries 3-Zone Laptop Keyboard #
@@ -259,17 +177,6 @@ SUBSYSTEMS=="usb", ATTR{idVendor}=="04d9", ATTR{idProduct}=="fc39", TAG+="uacces
# Gigabyte/Aorus RGB Fusion 2 USB #
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="048d", ATTR{idProduct}=="8297", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="048d", ATTR{idProduct}=="5702", TAG+="uaccess"
#---------------------------------------------------------------#
# Sinowealth USB #
# Glorious Model O / O- #
# Glorious Model D / D- #
# Everest GT-100 RGB #
#---------------------------------------------------------------#
SUBSYSTEMS=="usb", ATTR{idVendor}=="258a", ATTR{idProduct}=="0036", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="258a", ATTR{idProduct}=="0033", TAG+="uaccess"
SUBSYSTEMS=="usb", ATTR{idVendor}=="258a", ATTR{idProduct}=="0029", TAG+="uaccess"
#---------------------------------------------------------------#
# SteelSeries Peripheral Devices #
@@ -12,10 +12,9 @@
#include <stdio.h>
#include <stdlib.h>
AMDWraithPrismController::AMDWraithPrismController(hid_device* dev_handle, const char* path)
AMDWraithPrismController::AMDWraithPrismController(hid_device* dev_handle)
{
dev = dev_handle;
location = path;
dev = dev_handle;
strcpy(device_name, "AMD Wraith Prism");
@@ -39,11 +38,6 @@ AMDWraithPrismController::~AMDWraithPrismController()
}
std::string AMDWraithPrismController::GetLocationString()
{
return(location);
}
char* AMDWraithPrismController::GetDeviceName()
{
return device_name;
@@ -55,7 +49,6 @@ std::string AMDWraithPrismController::GetEffectChannelString(unsigned char chann
unsigned char usb_buf[] =
{
0x00,
0x40, 0x21, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00,
@@ -74,9 +67,9 @@ std::string AMDWraithPrismController::GetEffectChannelString(unsigned char chann
0x00, 0x00, 0x00, 0x00,
};
usb_buf[0x03] = channel;
usb_buf[0x02] = channel;
hid_write(dev, usb_buf, 65);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 64);
ret_string.append((char *)&usb_buf[0x08]);
@@ -90,7 +83,6 @@ std::string AMDWraithPrismController::GetFirmwareVersionString()
unsigned char usb_buf[] =
{
0x00,
0x12, 0x20, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00,
@@ -111,7 +103,7 @@ std::string AMDWraithPrismController::GetFirmwareVersionString()
unsigned char fw_buf[16] = {0x00};
hid_write(dev, usb_buf, 65);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 64);
for(int char_idx = 0; char_idx < 16; char_idx+=2)
@@ -214,7 +206,6 @@ void AMDWraithPrismController::SendEnableCommand()
{
unsigned char usb_buf[] =
{
0x00,
0x41, 0x80, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00,
@@ -233,7 +224,7 @@ void AMDWraithPrismController::SendEnableCommand()
0x00, 0x00, 0x00, 0x00,
};
hid_write(dev, usb_buf, 65);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 64);
}
@@ -241,7 +232,6 @@ void AMDWraithPrismController::SendApplyCommand()
{
unsigned char usb_buf[] =
{
0x00,
0x51, 0x28, 0x00, 0x00,
0xE0, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00,
@@ -260,7 +250,7 @@ void AMDWraithPrismController::SendApplyCommand()
0x00, 0x00, 0x00, 0x00,
};
hid_write(dev, usb_buf, 65);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 64);
}
@@ -279,7 +269,6 @@ void AMDWraithPrismController::SendEffectChannelUpdate
{
unsigned char usb_buf[] =
{
0x00,
0x51, 0x2C, 0x01, 0x00,
0x05, 0xFF, 0x00, 0x01,
0xFF, 0xFF, 0x00, 0xFF,
@@ -298,18 +287,18 @@ void AMDWraithPrismController::SendEffectChannelUpdate
0xFF, 0xFF, 0xFF, 0xFF
};
usb_buf[0x05] = effect_channel;
usb_buf[0x06] = speed;
usb_buf[0x07] = (direction ? 0x01 : 0x00) | (random_color ? 0x80 : 0x00);
usb_buf[0x08] = mode;
usb_buf[0x04] = effect_channel;
usb_buf[0x05] = speed;
usb_buf[0x06] = (direction ? 0x01 : 0x00) | (random_color ? 0x80 : 0x00);
usb_buf[0x07] = mode;
usb_buf[0x0A] = brightness;
usb_buf[0x09] = brightness;
usb_buf[0x0B] = red;
usb_buf[0x0C] = green;
usb_buf[0x0D] = blue;
usb_buf[0x0A] = red;
usb_buf[0x0B] = green;
usb_buf[0x0C] = blue;
hid_write(dev, usb_buf, 65);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 64);
}
@@ -317,7 +306,6 @@ void AMDWraithPrismController::SendChannelRemap(unsigned char ring_channel, unsi
{
unsigned char usb_buf[] =
{
0x00,
0x51, 0xA0, 0x01, 0x00,
0x00, 0x03, 0x00, 0x00,
0x05, 0x06, 0x07, 0x07,
@@ -336,14 +324,14 @@ void AMDWraithPrismController::SendChannelRemap(unsigned char ring_channel, unsi
0x00, 0x00, 0x00, 0x00,
};
usb_buf[0x09] = logo_channel;
usb_buf[0x0A] = fan_channel;
usb_buf[0x08] = logo_channel;
usb_buf[0x09] = fan_channel;
for(int led = 0x0B; led <= 0x19; led++)
for(int led = 0x0A; led <= 0x18; led++)
{
usb_buf[led] = ring_channel;
}
hid_write(dev, usb_buf, 65);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 64);
}
@@ -109,14 +109,13 @@ enum
class AMDWraithPrismController
{
public:
AMDWraithPrismController(hid_device* dev_handle, const char* path);
AMDWraithPrismController(hid_device* dev_handle);
~AMDWraithPrismController();
char* GetDeviceName();
std::string GetEffectChannelString(unsigned char channel);
std::string GetFirmwareVersionString();
std::string GetLocationString();
void SetRingEffectChannel(unsigned char channel);
@@ -132,7 +131,6 @@ public:
private:
char device_name[32];
hid_device* dev;
std::string location;
unsigned char current_fan_mode;
unsigned char current_fan_speed;
@@ -1,4 +1,3 @@
#include "Detector.h"
#include "AMDWraithPrismController.h"
#include "RGBController.h"
#include "RGBController_AMDWraithPrism.h"
@@ -29,26 +28,23 @@ void DetectAMDWraithPrismControllers(std::vector<RGBController*>& rgb_controller
{
if((info->vendor_id == AMD_WRAITH_PRISM_VID)
&&(info->product_id == AMD_WRAITH_PRISM_PID)
#if USE_HID_USAGE
&&(info->interface_number == 1)
&&(info->usage_page == 0xFF00))
#else
&&(info->interface_number == 1))
#endif
{
dev = hid_open_path(info->path);
if( dev )
{
AMDWraithPrismController* controller = new AMDWraithPrismController(dev, info->path);
RGBController_AMDWraithPrism* rgb_controller = new RGBController_AMDWraithPrism(controller);
rgb_controllers.push_back(rgb_controller);
}
break;
}
info = info->next;
else
{
info = info->next;
}
}
if( dev )
{
AMDWraithPrismController* controller = new AMDWraithPrismController(dev);
RGBController_AMDWraithPrism* rgb_controller = new RGBController_AMDWraithPrism(controller);
rgb_controllers.push_back(rgb_controller);
}
}
REGISTER_DETECTOR("AMD Wraith Prism", DetectAMDWraithPrismControllers);
@@ -1,122 +0,0 @@
/*-----------------------------------------*\
| ATC800Controller.cpp |
| |
| Driver for Aorus ATC800 CPU Cooler |
| |
| |
| Felipe Cavalcanti 08/13/2020 |
\*-----------------------------------------*/
#include "ATC800Controller.h"
#include <cstring>
ATC800Controller::ATC800Controller(hid_device* dev_handle, const char* path)
{
dev = dev_handle;
location = path;
}
ATC800Controller::~ATC800Controller()
{
hid_close(dev);
}
std::string ATC800Controller::GetDeviceLocation()
{
return(location);
}
void ATC800Controller::SendCoolerMode
(
unsigned char mode,
unsigned short /*speed*/,
unsigned char channel,
unsigned char red,
unsigned char green,
unsigned char blue
)
{
unsigned char usb_buf[9];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Lighting Control packet |
\*-----------------------------------------------------*/
if (channel == AORUS_ATC800_TOP_ZONE)
{
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0xbe;
usb_buf[0x08] = 0xcc;
hid_send_feature_report(dev, usb_buf, 9);
memset(usb_buf, 0x00, sizeof(usb_buf));
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0xc9;
usb_buf[0x02] = mode;
usb_buf[0x03] = 0x3c;
usb_buf[0x04] = 0x02;
usb_buf[0x05] = 0x00;
usb_buf[0x06] = 0x00;
hid_send_feature_report(dev, usb_buf, 9);
memset(usb_buf, 0x00, sizeof(usb_buf));
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0xbc;
usb_buf[0x02] = red;
usb_buf[0x03] = green;
usb_buf[0x04] = blue;
hid_send_feature_report(dev, usb_buf, 9);
memset(usb_buf, 0x00, sizeof(usb_buf));
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0xb6;
}
else if (channel == AORUS_ATC800_FANS_ZONE)
{
hid_send_feature_report(dev, usb_buf, 9);
memset(usb_buf, 0x00, sizeof(usb_buf));
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0xc9;
usb_buf[0x02] = mode;
usb_buf[0x03] = 0x3c;
usb_buf[0x04] = 0x02;
usb_buf[0x05] = 0x00;
usb_buf[0x06] = 0x01;
hid_send_feature_report(dev, usb_buf, 9);
memset(usb_buf, 0x00, sizeof(usb_buf));
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0xb0;
usb_buf[0x02] = mode;
usb_buf[0x03] = red;
usb_buf[0x04] = green;
usb_buf[0x05] = blue;
usb_buf[0x06] = red;
usb_buf[0x07] = green;
usb_buf[0x08] = blue;
for(int i = 0xb0; i <= 0xb3; i++)
{
usb_buf[0x01] = i; //zone b0->b3
hid_send_feature_report(dev, usb_buf, 9);
}
}
memset(usb_buf, 0x00, sizeof(usb_buf));
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0xb6;
hid_send_feature_report(dev, usb_buf, 9);
}
@@ -1,62 +0,0 @@
/*-----------------------------------------*\
| ATC800Controller.h |
| |
| Definitions and types for ATC800 CPU |
| Cooler |
| |
| Felipe Cavalcanti 08/13/2020 |
\*-----------------------------------------*/
#include "RGBController.h"
#include <string>
#include <hidapi/hidapi.h>
#pragma once
enum
{
AORUS_ATC800_MODE_OFF = 0x00,
AORUS_ATC800_MODE_STATIC = 0x01,
AORUS_ATC800_MODE_PULSE = 0x02,
AORUS_ATC800_MODE_FLASHING = 0x04,
AORUS_ATC800_MODE_DOUBLE_FLASH = 0x05,
};
enum
{
AORUS_ATC800_SPEED_SLOWEST = 0x00, /* Slowest speed */
AORUS_ATC800_SPEED_SLOW = 0x01, /* Slow speed */
AORUS_ATC800_SPEED_NORMAL = 0x02, /* Normal speed */
AORUS_ATC800_SPEED_FAST = 0x03, /* Fast speed */
AORUS_ATC800_SPEED_FASTEST = 0x04, /* Fastest speed */
};
enum
{
AORUS_ATC800_FANS_ZONE = 0,
AORUS_ATC800_TOP_ZONE = 1
};
class ATC800Controller
{
public:
ATC800Controller(hid_device* dev_handle, const char* path);
~ATC800Controller();
std::string GetDeviceLocation();
void SendCoolerMode
(
unsigned char mode,
unsigned short speed,
unsigned char channel,
unsigned char red,
unsigned char green,
unsigned char blue
);
private:
hid_device* dev;
std::string location;
};
@@ -1,87 +0,0 @@
#include "Detector.h"
#include "RGBController.h"
#include "ATC800Controller.h"
#include "RGBController_AorusATC800.h"
#include <vector>
#include <hidapi/hidapi.h>
/*-----------------------------------------------------*\
| Vendor ID |
\*-----------------------------------------------------*/
#define HOLTEK_VID 0x1044
/*-----------------------------------------------------*\
| Controller product ids |
\*-----------------------------------------------------*/
#define ATC_800_CONTROLLER_PID 0x7A42
typedef struct
{
unsigned short usb_vid;
unsigned short usb_pid;
char usb_interface;
device_type type;
const char * name;
} device;
#define NUM_DEVICES (sizeof(device_list) / sizeof(device_list[ 0 ]))
static const device device_list[] =
{
{ HOLTEK_VID, ATC_800_CONTROLLER_PID, 0, DEVICE_TYPE_KEYBOARD, "Aorus ATC800 CPU Cooler" },
};
/******************************************************************************************\
* *
* DetectAorusCPUCoolerControllers *
* *
* Tests the USB address to see if a Aorus RGB CPU Cooler exists there. *
* *
\******************************************************************************************/
void DetectAorusCPUCoolerControllers(std::vector<RGBController*>& rgb_controllers)
{
hid_init();
for(unsigned int device_idx = 0; device_idx < NUM_DEVICES; device_idx++)
{
hid_device_info* info = hid_enumerate(device_list[device_idx].usb_vid, device_list[device_idx].usb_pid);
while(info)
{
if((info->vendor_id == device_list[device_idx].usb_vid)
&&(info->product_id == device_list[device_idx].usb_pid)
#ifdef USE_HID_USAGE
&&(info->interface_number == device_list[device_idx].usb_interface)
&&(info->usage_page == 0xFF01)
&&(info->usage == 1))
#else
&&(info->interface_number == device_list[device_idx].usb_interface))
#endif
{
hid_device* dev = hid_open_path(info->path);
if(dev)
{
switch(device_list[device_idx].usb_pid)
{
case ATC_800_CONTROLLER_PID:
{
ATC800Controller* controller = new ATC800Controller(dev, info->path);
RGBController_AorusATC800* rgb_controller = new RGBController_AorusATC800(controller);
rgb_controller->name = device_list[device_idx].name;
rgb_controllers.push_back(rgb_controller);
}
break;
}
}
}
info = info->next;
}
hid_free_enumeration(info);
}
}
REGISTER_DETECTOR("Aorus CPU Coolers", DetectAorusCPUCoolerControllers);
@@ -1,143 +0,0 @@
/*-----------------------------------------*\
| RGBController_AorusATC800.cpp |
| |
| Generic RGB Interface Aorus ATC800 CPU |
| Cooler |
| |
| Felipe Cavalcanti 08/13/2020 |
\*-----------------------------------------*/
#include "RGBController_AorusATC800.h"
RGBController_AorusATC800::RGBController_AorusATC800(ATC800Controller* cooler_ptr)
{
cooler = cooler_ptr;
name = "Aorus ATC800 CPU Cooler";
type = DEVICE_TYPE_COOLER;
description = "Aorus ATC800 CPU Cooler";
location = cooler->GetDeviceLocation();
mode Static;
Static.name = "Static";
Static.value = AORUS_ATC800_MODE_STATIC;
Static.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Static.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Static);
mode Off;
Off.name = "Off";
Off.value = AORUS_ATC800_MODE_OFF;
Off.flags = 0;
Off.color_mode = MODE_COLORS_NONE;
modes.push_back(Off);
mode Flashing;
Flashing.name = "Flashing";
Flashing.value = AORUS_ATC800_MODE_FLASHING;
Flashing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_PER_LED_COLOR;
Flashing.color_mode = MODE_COLORS_PER_LED;
Flashing.speed_min = AORUS_ATC800_SPEED_SLOWEST;
Flashing.speed_max = AORUS_ATC800_SPEED_FASTEST;
Flashing.speed = AORUS_ATC800_SPEED_NORMAL;
modes.push_back(Flashing);
mode DoubleFlashing;
DoubleFlashing.name = "Double Flashing";
DoubleFlashing.value = AORUS_ATC800_MODE_DOUBLE_FLASH;
DoubleFlashing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_PER_LED_COLOR;
DoubleFlashing.color_mode = MODE_COLORS_PER_LED;
DoubleFlashing.speed_min = AORUS_ATC800_SPEED_SLOWEST;
DoubleFlashing.speed_max = AORUS_ATC800_SPEED_FASTEST;
DoubleFlashing.speed = AORUS_ATC800_SPEED_NORMAL;
modes.push_back(DoubleFlashing);
mode Pulsing;
Pulsing.name = "Pulsing";
Pulsing.value = AORUS_ATC800_MODE_PULSE;
Pulsing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_PER_LED_COLOR;
Pulsing.color_mode = MODE_COLORS_PER_LED;
Pulsing.speed_min = AORUS_ATC800_SPEED_SLOWEST;
Pulsing.speed_max = AORUS_ATC800_SPEED_FASTEST;
Pulsing.speed = AORUS_ATC800_SPEED_NORMAL;
modes.push_back(Pulsing);
SetupZones();
}
void RGBController_AorusATC800::SetupZones()
{
zone atc800_cpu_fans_zone;
atc800_cpu_fans_zone.name = "Fan";
atc800_cpu_fans_zone.type = ZONE_TYPE_SINGLE;
atc800_cpu_fans_zone.leds_min = 1;
atc800_cpu_fans_zone.leds_max = 1;
atc800_cpu_fans_zone.leds_count = 1;
atc800_cpu_fans_zone.matrix_map = NULL;
zones.push_back(atc800_cpu_fans_zone);
led atc800_fan_led;
atc800_fan_led.name = "Fan";
leds.push_back(atc800_fan_led);
zone atc800_top_zone;
atc800_top_zone.name = "Top";
atc800_top_zone.type = ZONE_TYPE_SINGLE;
atc800_top_zone.leds_min = 1;
atc800_top_zone.leds_max = 1;
atc800_top_zone.leds_count = 1;
atc800_top_zone.matrix_map = NULL;
zones.push_back(atc800_top_zone);
led atc800_top_led;
atc800_top_led.name = "Top";
leds.push_back(atc800_top_led);
SetupColors();
}
void RGBController_AorusATC800::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_AorusATC800::DeviceUpdateLEDs()
{
UpdateZoneLEDs(0);
UpdateZoneLEDs(1);
}
void RGBController_AorusATC800::UpdateZoneLEDs(int zone)
{
unsigned char mode = modes[active_mode].value;
unsigned char red = RGBGetRValue(colors[zone]);
unsigned char grn = RGBGetGValue(colors[zone]);
unsigned char blu = RGBGetBValue(colors[zone]);
if (mode == AORUS_ATC800_MODE_OFF)
{
mode = 1;
red = 0;
grn = 0;
blu = 0;
}
cooler->SendCoolerMode(mode, modes[active_mode].speed, zone, red, grn, blu);
}
void RGBController_AorusATC800::UpdateSingleLED(int led)
{
UpdateZoneLEDs(led);
}
void RGBController_AorusATC800::SetCustomMode()
{
}
void RGBController_AorusATC800::DeviceUpdateMode()
{
DeviceUpdateLEDs();
}
@@ -1,32 +0,0 @@
/*-----------------------------------------*\
| RGBController_AorusATC800.h |
| |
| Generic RGB Interface for Aorus ATC 800 |
| CPU Cooler |
| |
| Felipe Cavalcanti 08/13/2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "ATC800Controller.h"
class RGBController_AorusATC800 : public RGBController
{
public:
RGBController_AorusATC800(ATC800Controller* logitech_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
ATC800Controller* cooler;
};
@@ -1,4 +1,3 @@
#include "Detector.h"
#include "AuraCoreController.h"
#include "RGBController.h"
#include "RGBController_AuraCore.h"
@@ -44,5 +43,3 @@ void DetectAuraCoreControllers(std::vector<RGBController*>& rgb_controllers)
}
}
}
REGISTER_DETECTOR("ASUS Aura Core", DetectAuraCoreControllers);
@@ -6,7 +6,6 @@
| Jan Rettig (Klapstuhl) 14.02.2020 |
\*-----------------------------------------*/
#include "Detector.h"
#include "AuraGPUController.h"
#include "RGBController.h"
#include "RGBController_AuraGPU.h"
@@ -83,6 +82,4 @@ void DetectAuraGPUControllers(std::vector<i2c_smbus_interface*> &busses, std::ve
std::this_thread::sleep_for(1ms);
}
}
} /* DetectAuraGPUControllers() */
REGISTER_I2C_DETECTOR("ASUS Aura GPU", DetectAuraGPUControllers);
} /* DetectAuraGPUControllers() */
@@ -10,21 +10,6 @@
#include "AuraSMBusController.h"
#include <cstring>
static const char* aura_channels[] = /* Aura channel strings */
{
"Audio",
"Backplate",
"Back I/O",
"Center",
"Center",
"DRAM",
"PCIe",
"RGB Header",
"RGB Header 2",
"RGB Header",
"Unknown",
};
AuraSMBusController::AuraSMBusController(i2c_smbus_interface* bus, aura_dev_id dev)
{
this->bus = bus;
@@ -60,7 +45,7 @@ AuraSMBusController::AuraSMBusController(i2c_smbus_interface* bus, aura_dev_id d
{
direct_reg = AURA_REG_COLORS_DIRECT_V2;
effect_reg = AURA_REG_COLORS_EFFECT_V2;
channel_cfg = AURA_CONFIG_CHANNEL_V1;
channel_cfg = AURA_CONFIG_CHANNEL_V2;
}
// AUMA0-E6K5-0106 - Second generation motherboard controller
else if (strcmp(device_name, "AUMA0-E6K5-0106") == 0)
@@ -83,13 +68,6 @@ AuraSMBusController::AuraSMBusController(i2c_smbus_interface* bus, aura_dev_id d
effect_reg = AURA_REG_COLORS_EFFECT_V2;
channel_cfg = AURA_CONFIG_CHANNEL_V2;
}
// AUMA0-E8K4-0101 - Second generation motherboard controller
else if (strcmp(device_name, "AUMA0-E8K4-0101") == 0)
{
direct_reg = AURA_REG_COLORS_DIRECT_V2;
effect_reg = AURA_REG_COLORS_EFFECT_V2;
channel_cfg = AURA_CONFIG_CHANNEL_V2;
}
// Assume first generation controller if string does not match
else
{
@@ -116,7 +94,7 @@ std::string AuraSMBusController::GetDeviceLocation()
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
return(return_string);
}
unsigned char AuraSMBusController::GetChannel(unsigned int led)
@@ -66,6 +66,21 @@ enum
AURA_LED_CHANNEL_RGB_HEADER_3 = 0x91, /* RGB Header 3 LED channel */
};
static const char* aura_channels[] = /* Aura channel strings */
{
"Audio",
"Backplate",
"Back I/O",
"Center",
"Center",
"DRAM",
"PCIe",
"RGB Header",
"RGB Header 2",
"RGB Header",
"Unknown",
};
enum
{
AURA_CONFIG_LED_COUNT = 0x02, /* LED Count configuration offset */
@@ -1,9 +1,7 @@
#include "Detector.h"
#include "AuraSMBusController.h"
#include "RGBController.h"
#include "RGBController_AuraSMBus.h"
#include "i2c_smbus.h"
#include "pci_ids.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
@@ -13,7 +11,7 @@ using namespace std::chrono_literals;
/*----------------------------------------------------------------------*\
| This list contains the available SMBus addresses for mapping Aura RAM |
\*----------------------------------------------------------------------*/
#define AURA_RAM_ADDRESS_COUNT 23
#define AURA_RAM_ADDRESS_COUNT 22
static const unsigned char aura_ram_addresses[] =
{
@@ -36,7 +34,6 @@ static const unsigned char aura_ram_addresses[] =
0x66,
0x67,
0x39,
0x3A,
0x3B,
0x3C,
0x3D
@@ -131,70 +128,62 @@ void DetectAuraSMBusControllers(std::vector<i2c_smbus_interface*> &busses, std::
{
int address_list_idx = -1;
IF_DRAM_SMBUS(busses[bus]->pci_vendor, busses[bus]->pci_device)
// Remap Aura-enabled RAM modules on 0x77
for (unsigned int slot = 0; slot < 8; slot++)
{
// Remap Aura-enabled RAM modules on 0x77
for (unsigned int slot = 0; slot < 8; slot++)
int res = busses[bus]->i2c_smbus_write_quick(0x77, I2C_SMBUS_WRITE);
if (res < 0)
{
int res = busses[bus]->i2c_smbus_write_quick(0x77, I2C_SMBUS_WRITE);
break;
}
if (res < 0)
{
break;
}
do
{
address_list_idx++;
if(address_list_idx < AURA_RAM_ADDRESS_COUNT)
{
res = busses[bus]->i2c_smbus_write_quick(aura_ram_addresses[address_list_idx], I2C_SMBUS_WRITE);
}
else
{
break;
}
} while (res >= 0);
do
{
address_list_idx++;
if(address_list_idx < AURA_RAM_ADDRESS_COUNT)
{
AuraRegisterWrite(busses[bus], 0x77, AURA_REG_SLOT_INDEX, slot);
AuraRegisterWrite(busses[bus], 0x77, AURA_REG_I2C_ADDRESS, (aura_ram_addresses[address_list_idx] << 1));
res = busses[bus]->i2c_smbus_write_quick(aura_ram_addresses[address_list_idx], I2C_SMBUS_WRITE);
}
}
// Add Aura-enabled controllers at their remapped addresses
for (unsigned int address_list_idx = 0; address_list_idx < AURA_RAM_ADDRESS_COUNT; address_list_idx++)
{
if (TestForAuraSMBusController(busses[bus], aura_ram_addresses[address_list_idx]))
else
{
new_aura = new AuraSMBusController(busses[bus], aura_ram_addresses[address_list_idx]);
new_controller = new RGBController_AuraSMBus(new_aura);
rgb_controllers.push_back(new_controller);
break;
}
} while (res >= 0);
std::this_thread::sleep_for(1ms);
if(address_list_idx < AURA_RAM_ADDRESS_COUNT)
{
AuraRegisterWrite(busses[bus], 0x77, AURA_REG_SLOT_INDEX, slot);
AuraRegisterWrite(busses[bus], 0x77, AURA_REG_I2C_ADDRESS, (aura_ram_addresses[address_list_idx] << 1));
}
}
// Add Aura-enabled motherboard controllers
IF_MOBO_SMBUS(busses[bus]->pci_vendor, busses[bus]->pci_device)
// Add Aura-enabled controllers at their remapped addresses
for (unsigned int address_list_idx = 0; address_list_idx < AURA_RAM_ADDRESS_COUNT; address_list_idx++)
{
for (unsigned int address_list_idx = 0; address_list_idx < AURA_MOBO_ADDRESS_COUNT; address_list_idx++)
if (TestForAuraSMBusController(busses[bus], aura_ram_addresses[address_list_idx]))
{
if (TestForAuraSMBusController(busses[bus], aura_mobo_addresses[address_list_idx]))
{
new_aura = new AuraSMBusController(busses[bus], aura_mobo_addresses[address_list_idx]);
new_controller = new RGBController_AuraSMBus(new_aura);
rgb_controllers.push_back(new_controller);
}
std::this_thread::sleep_for(1ms);
new_aura = new AuraSMBusController(busses[bus], aura_ram_addresses[address_list_idx]);
new_controller = new RGBController_AuraSMBus(new_aura);
rgb_controllers.push_back(new_controller);
}
std::this_thread::sleep_for(1ms);
}
// Add Aura-enabled motherboard controllers
for (unsigned int address_list_idx = 0; address_list_idx < AURA_MOBO_ADDRESS_COUNT; address_list_idx++)
{
if (TestForAuraSMBusController(busses[bus], aura_mobo_addresses[address_list_idx]))
{
new_aura = new AuraSMBusController(busses[bus], aura_mobo_addresses[address_list_idx]);
new_controller = new RGBController_AuraSMBus(new_aura);
rgb_controllers.push_back(new_controller);
}
std::this_thread::sleep_for(1ms);
}
}
} /* DetectAuraSMBusControllers() */
REGISTER_I2C_DETECTOR("ASUS Aura SMBus", DetectAuraSMBusControllers);
@@ -10,7 +10,7 @@
#include "AuraAddressableController.h"
#include <cstring>
AuraAddressableController::AuraAddressableController(hid_device* dev_handle, const char* path) : AuraUSBController(dev_handle, path)
AuraAddressableController::AuraAddressableController(hid_device* dev_handle) : AuraUSBController(dev_handle)
{
/*-----------------------------------------------------*\
| Add addressable devices |
@@ -40,7 +40,7 @@ void AuraAddressableController::SetChannelLEDs(unsigned char channel, RGBColor *
leds_to_send = num_colors - leds_sent;
}
for(unsigned int led_idx = 0; led_idx < leds_to_send; led_idx++)
for(int led_idx = 0; led_idx < leds_to_send; led_idx++)
{
led_data[(led_idx * 3) + 0] = RGBGetRValue(colors[led_idx + leds_sent]);
led_data[(led_idx * 3) + 1] = RGBGetGValue(colors[led_idx + leds_sent]);
@@ -23,7 +23,7 @@ enum
class AuraAddressableController : public AuraUSBController
{
public:
AuraAddressableController(hid_device* dev_handle, const char* path);
AuraAddressableController(hid_device* dev_handle);
~AuraAddressableController();
void SetChannelLEDs
@@ -10,7 +10,7 @@
#include "AuraMainboardController.h"
#include <cstring>
AuraMainboardController::AuraMainboardController(hid_device* dev_handle, const char* path) : AuraUSBController(dev_handle, path), mode(AURA_MODE_DIRECT)
AuraMainboardController::AuraMainboardController(hid_device* dev_handle) : AuraUSBController(dev_handle), mode(AURA_MODE_DIRECT)
{
/*-----------------------------------------------------*\
| Add mainboard device |
@@ -44,7 +44,7 @@ void AuraMainboardController::SetChannelLEDs(unsigned char channel, RGBColor * c
leds_to_send = num_colors - leds_sent;
}
for(unsigned int led_idx = 0; led_idx < leds_to_send; led_idx++)
for(int led_idx = 0; led_idx < leds_to_send; led_idx++)
{
led_data[(led_idx * 3) + 0] = RGBGetRValue(colors[led_idx + leds_sent]);
led_data[(led_idx * 3) + 1] = RGBGetGValue(colors[led_idx + leds_sent]);
@@ -25,7 +25,7 @@ enum
class AuraMainboardController : public AuraUSBController
{
public:
AuraMainboardController(hid_device* dev_handle, const char* path);
AuraMainboardController(hid_device* dev_handle);
~AuraMainboardController();
void SetChannelLEDs
@@ -1,64 +0,0 @@
/*-----------------------------------------*\
| AuraMouseController.cpp |
| |
| Driver for ASUS Aura RGB USB |
| lighting controller |
| |
| Adam Honse (CalcProgrammer1) 10/23/2020 |
\*-----------------------------------------*/
#include "AuraMouseController.h"
#include <cstring>
AuraMouseController::AuraMouseController(hid_device* dev_handle, const char* path)
{
dev = dev_handle;
location = path;
}
AuraMouseController::~AuraMouseController()
{
}
std::string AuraMouseController::GetDeviceLocation()
{
return(location);
}
void AuraMouseController::SendUpdate
(
unsigned char zone,
unsigned char mode,
unsigned char red,
unsigned char grn,
unsigned char blu
)
{
unsigned char usb_buf[65];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up message packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0x51;
usb_buf[0x02] = 0x28;
usb_buf[0x03] = zone;
usb_buf[0x04] = 0x00;
usb_buf[0x05] = mode;
usb_buf[0x06] = 0x04;
usb_buf[0x07] = red;
usb_buf[0x08] = grn;
usb_buf[0x09] = blu;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
}
@@ -1,54 +0,0 @@
/*-----------------------------------------*\
| AuraMouseController.h |
| |
| Definitions and types for ASUS Aura |
| USB RGB lighting controller |
| |
| Adam Honse (CalcProgrammer1) 10/23/2020 |
\*-----------------------------------------*/
#include "RGBController.h"
#include <string>
#include <vector>
#include <hidapi/hidapi.h>
#pragma once
enum
{
AURA_MOUSE_ZONE_LOGO = 0,
AURA_MOUSE_ZONE_SCROLL = 1,
AURA_MOUSE_ZONE_UNDERGLOW = 2,
AURA_MOUSE_ZONE_ALL = 3,
};
enum
{
AURA_MOUSE_MODE_STATIC = 0,
AURA_MOUSE_MODE_BREATHING = 1,
AURA_MOUSE_MODE_COLOR_CYCLE = 2,
AURA_MOUSE_MODE_REACTIVE = 3,
};
class AuraMouseController
{
public:
AuraMouseController(hid_device* dev_handle, const char* path);
virtual ~AuraMouseController();
std::string GetDeviceLocation();
void SendUpdate
(
unsigned char zone,
unsigned char mode,
unsigned char red,
unsigned char grn,
unsigned char blu
);
private:
hid_device* dev;
std::string location;
};
@@ -11,10 +11,9 @@
#include <cstring>
#include <stdexcept>
AuraUSBController::AuraUSBController(hid_device* dev_handle, const char* path)
AuraUSBController::AuraUSBController(hid_device* dev_handle)
{
dev = dev_handle;
location = path;
dev = dev_handle;
GetFirmwareVersion();
GetConfigTable();
@@ -30,11 +29,6 @@ unsigned int AuraUSBController::GetChannelCount()
return(device_info.size());
}
std::string AuraUSBController::GetDeviceLocation()
{
return(location);
}
std::string AuraUSBController::GetDeviceName()
{
return(device_name);
@@ -59,12 +59,11 @@ struct AuraDeviceInfo
class AuraUSBController
{
public:
AuraUSBController(hid_device* dev_handle, const char* path);
AuraUSBController(hid_device* dev_handle);
virtual ~AuraUSBController();
unsigned int GetChannelCount();
std::string GetDeviceLocation();
std::string GetDeviceName();
const std::vector<AuraDeviceInfo>& GetAuraDevices() const;
@@ -89,7 +88,6 @@ protected:
hid_device* dev;
unsigned char config_table[60];
std::vector<AuraDeviceInfo> device_info;
std::string location;
void SendDirect
(
@@ -1,170 +1,77 @@
#include "Detector.h"
#include "AuraAddressableController.h"
#include "AuraMainboardController.h"
#include "AuraMouseController.h"
#include "RGBController.h"
#include "RGBController_AuraUSB.h"
#include "RGBController_AuraMouse.h"
#include <vector>
#include <stdexcept>
#include <hidapi/hidapi.h>
#define AURA_USB_VID 0x0B05
#define AURA_TERMINAL_PID 0x1889
#define AURA_ADDRESSABLE_1_PID 0x1867
#define AURA_ADDRESSABLE_2_PID 0x1872
#define AURA_ADDRESSABLE_3_PID 0x18A3
#define AURA_ADDRESSABLE_4_PID 0x18A5
#define AURA_MOTHERBOARD_1_PID 0x18F3
#define AURA_MOTHERBOARD_2_PID 0x1939
#define AURA_ROG_GLADIUS_II_CORE_PID 0x18DD
#define AURA_ROG_GLADIUS_II_PID 0x1845
#define AURA_ROG_GLADIUS_II_ORIGIN_PID 0x1877
#define AURA_USB_VID 0x0B05
typedef struct
{
unsigned short usb_vid;
unsigned short usb_pid;
unsigned short usb_interface;
const char * name;
} aura_device;
#define NUM_ADDRESSABLE_PIDS 4
static const unsigned short addressable_pid_table[] =
{
0x1867,
0x1872,
0x1889,
0x18A3
};
#define ADDRESSABLE_NUM_DEVICES (sizeof(addressable_device_list) / sizeof(addressable_device_list[ 0 ]))
#define NUM_MAINBOARD_PIDS 2
static const unsigned short mainboard_pid_table[] =
{
0x18f3,
0x1939
};
static const aura_device addressable_device_list[] =
{
/*---------------------------------------------------------------------------------*\
| ASUS AURA Addressable |
\*---------------------------------------------------------------------------------*/
{ AURA_USB_VID, AURA_TERMINAL_PID, 0, "ASUS ROG AURA Terminal" },
{ AURA_USB_VID, AURA_ADDRESSABLE_1_PID, 0, "ASUS Aura Addressable" },
{ AURA_USB_VID, AURA_ADDRESSABLE_2_PID, 0, "ASUS Aura Addressable" },
{ AURA_USB_VID, AURA_ADDRESSABLE_3_PID, 0, "ASUS Aura Addressable" },
{ AURA_USB_VID, AURA_ADDRESSABLE_4_PID, 0, "ASUS Aura Addressable" },
};
#define MOTHERBOARD_NUM_DEVICES (sizeof(motherboard_device_list) / sizeof(motherboard_device_list[ 0 ]))
static const aura_device motherboard_device_list[] =
{
/*---------------------------------------------------------------------------------*\
| ASUS AURA Motherboard |
\*---------------------------------------------------------------------------------*/
{ AURA_USB_VID, AURA_MOTHERBOARD_1_PID, 0, "ASUS Aura Motherboard" },
{ AURA_USB_VID, AURA_MOTHERBOARD_2_PID, 0, "ASUS Aura Motherboard" },
};
#define MOUSE_NUM_DEVICES (sizeof(mouse_device_list) / sizeof(mouse_device_list[ 0 ]))
static const aura_device mouse_device_list[] =
{
{ AURA_USB_VID, AURA_ROG_GLADIUS_II_CORE_PID, 0, "ASUS ROG Gladius II Core" },
{ AURA_USB_VID, AURA_ROG_GLADIUS_II_PID, 2, "ASUS ROG Gladius II" },
{ AURA_USB_VID, AURA_ROG_GLADIUS_II_ORIGIN_PID, 2, "ASUS ROG Gladius II Origin" },
};
/******************************************************************************************\
* *
* DetectAuraUSBControllers *
* *
* Tests the USB address to see if an Asus Aura USB RGB header controller *
* exists there. *
* *
\******************************************************************************************/
void DetectAuraUSBControllers(std::vector<RGBController*>& rgb_controllers)
{
hid_device_info* info = NULL;
hid_device* dev;
//Look for Asus Aura addressable RGB header controller
hid_init();
/*ASUS AURA Addressable*/
for(unsigned int pid_idx = 0; pid_idx < ADDRESSABLE_NUM_DEVICES; pid_idx++)
for(int pid_idx = 0; pid_idx < NUM_ADDRESSABLE_PIDS; pid_idx++)
{
info = hid_enumerate(addressable_device_list[pid_idx].usb_vid, addressable_device_list[pid_idx].usb_pid);
dev = hid_open(AURA_USB_VID, addressable_pid_table[pid_idx], 0);
while(info)
if( dev )
{
hid_device* dev = NULL;
AuraAddressableController* controller = new AuraAddressableController(dev);
if((info->vendor_id == addressable_device_list[pid_idx].usb_vid)
&&(info->product_id == addressable_device_list[pid_idx].usb_pid))
{
dev = hid_open_path(info->path);
RGBController_AuraUSB* rgb_controller = new RGBController_AuraUSB(controller);
if(dev)
{
AuraAddressableController* controller = new AuraAddressableController(dev, info->path);
RGBController_AuraUSB* rgb_controller = new RGBController_AuraUSB(controller);
rgb_controller->name = addressable_device_list[pid_idx].name;
rgb_controllers.push_back(rgb_controller);
}
}
info = info->next;
rgb_controllers.push_back(rgb_controller);
}
}
info = NULL;
/*ASUS AURA Motherboard*/
for(unsigned int pid_idx = 0; pid_idx < MOTHERBOARD_NUM_DEVICES; pid_idx++)
for(int pid_idx = 0; pid_idx < NUM_MAINBOARD_PIDS; pid_idx++)
{
info = hid_enumerate(motherboard_device_list[pid_idx].usb_vid, motherboard_device_list[pid_idx].usb_pid);
dev = hid_open(AURA_USB_VID, mainboard_pid_table[pid_idx], 0);
while(info)
if( dev )
{
hid_device* dev = NULL;
if((info->vendor_id == motherboard_device_list[pid_idx].usb_vid)
&&(info->product_id == motherboard_device_list[pid_idx].usb_pid))
try
{
dev = hid_open_path(info->path);
AuraMainboardController* controller = new AuraMainboardController(dev);
if(dev)
{
try
{
AuraMainboardController* controller = new AuraMainboardController(dev, info->path);
RGBController_AuraUSB* rgb_controller = new RGBController_AuraUSB(controller);
rgb_controller->name = motherboard_device_list[pid_idx].name;
rgb_controllers.push_back(rgb_controller);
}
catch(std::runtime_error&)
{
// reading the config table failed
}
}
RGBController_AuraUSB* rgb_controller = new RGBController_AuraUSB(controller);
rgb_controllers.push_back(rgb_controller);
}
catch(std::runtime_error&)
{
// reading the config table failed
}
info = info->next;
}
}
/*ASUS AURA Mouse*/
for(unsigned int pid_idx = 0; pid_idx < MOUSE_NUM_DEVICES; pid_idx++)
{
info = hid_enumerate(mouse_device_list[pid_idx].usb_vid, mouse_device_list[pid_idx].usb_pid);
while(info)
{
hid_device* dev = NULL;
if((info->vendor_id == mouse_device_list[pid_idx].usb_vid)
&&(info->product_id == mouse_device_list[pid_idx].usb_pid)
#ifdef USE_HID_USAGE
&&(info->interface_number == mouse_device_list[pid_idx].usb_interface )
&&(info->usage_page == 0xFF01))
#else
&&(info->interface_number == mouse_device_list[pid_idx].usb_interface ))
#endif
{
dev = hid_open_path(info->path);
if(dev)
{
AuraMouseController* controller = new AuraMouseController(dev, info->path);
RGBController_AuraMouse* rgb_controller = new RGBController_AuraMouse(controller);
rgb_controller->name = mouse_device_list[pid_idx].name;
rgb_controllers.push_back(rgb_controller);
}
}
info = info->next;
}
}
} /* DetectAuraUSBControllers() */
REGISTER_DETECTOR("ASUS Aura USB", DetectAuraUSBControllers);
}
@@ -1,202 +0,0 @@
/*-----------------------------------------*\
| RGBController_AuraMouse.cpp |
| |
| Generic RGB Interface for Asus Aura |
| USB controller driver |
| |
| Adam Honse (CalcProgrammer1) 10/25/2020 |
\*-----------------------------------------*/
#include "RGBController_AuraMouse.h"
RGBController_AuraMouse::RGBController_AuraMouse(AuraMouseController* aura_ptr)
{
aura = aura_ptr;
name = "ASUS Aura Mouse";
type = DEVICE_TYPE_MOUSE;
description = "ASUS Aura Mouse Device";
location = aura->GetDeviceLocation();
mode Direct;
Direct.name = "Direct";
Direct.value = AURA_MOUSE_MODE_STATIC;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
mode Breathing;
Breathing.name = "Breathing";
Breathing.value = AURA_MOUSE_MODE_BREATHING;
Breathing.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Breathing.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Breathing);
mode SpectrumCycle;
SpectrumCycle.name = "Spectrum Cycle";
SpectrumCycle.value = AURA_MOUSE_MODE_COLOR_CYCLE;
SpectrumCycle.flags = 0;
SpectrumCycle.color_mode = MODE_COLORS_NONE;
modes.push_back(SpectrumCycle);
mode Reactive;
Reactive.name = "Reactive";
Reactive.value = AURA_MOUSE_MODE_REACTIVE;
Reactive.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Reactive.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Reactive);
SetupZones();
}
RGBController_AuraMouse::~RGBController_AuraMouse()
{
}
void RGBController_AuraMouse::SetupZones()
{
zone logo_zone;
logo_zone.name = "Logo";
logo_zone.type = ZONE_TYPE_SINGLE;
logo_zone.leds_min = 1;
logo_zone.leds_max = 1;
logo_zone.leds_count = 1;
logo_zone.matrix_map = NULL;
zones.push_back(logo_zone);
led logo_led;
logo_led.name = "Logo";
leds.push_back(logo_led);
zone scroll_zone;
scroll_zone.name = "Scroll Wheel";
scroll_zone.type = ZONE_TYPE_SINGLE;
scroll_zone.leds_min = 1;
scroll_zone.leds_max = 1;
scroll_zone.leds_count = 1;
scroll_zone.matrix_map = NULL;
zones.push_back(scroll_zone);
led scroll_led;
scroll_led.name = "Scroll Wheel";
leds.push_back(scroll_led);
zone underglow_zone;
underglow_zone.name = "Underglow";
underglow_zone.type = ZONE_TYPE_SINGLE;
underglow_zone.leds_min = 1;
underglow_zone.leds_max = 1;
underglow_zone.leds_count = 1;
underglow_zone.matrix_map = NULL;
zones.push_back(underglow_zone);
led underglow_led;
underglow_led.name = "Underglow";
leds.push_back(underglow_led);
SetupColors();
}
void RGBController_AuraMouse::ResizeZone(int /*zone*/, int /*new_size*/)
{
}
void RGBController_AuraMouse::DeviceUpdateLEDs()
{
DeviceUpdateMode();
}
void RGBController_AuraMouse::UpdateZoneLEDs(int zone)
{
UpdateSingleLED(zone);
}
void RGBController_AuraMouse::UpdateSingleLED(int led)
{
unsigned char red = 0;
unsigned char grn = 0;
unsigned char blu = 0;
if(modes[active_mode].color_mode == MODE_COLORS_PER_LED)
{
if(led == 0)
{
red = RGBGetRValue(colors[led]);
grn = RGBGetGValue(colors[led]);
blu = RGBGetBValue(colors[led]);
aura->SendUpdate(AURA_MOUSE_ZONE_LOGO, modes[active_mode].value, red, grn, blu);
}
else if(led == 1)
{
red = RGBGetRValue(colors[led]);
grn = RGBGetGValue(colors[led]);
blu = RGBGetBValue(colors[led]);
aura->SendUpdate(AURA_MOUSE_ZONE_SCROLL, modes[active_mode].value, red, grn, blu);
}
else
{
red = RGBGetRValue(colors[led]);
grn = RGBGetGValue(colors[led]);
blu = RGBGetBValue(colors[led]);
aura->SendUpdate(AURA_MOUSE_ZONE_UNDERGLOW, modes[active_mode].value, red, grn, blu);
}
}
else
{
aura->SendUpdate(AURA_MOUSE_ZONE_ALL, modes[active_mode].value, red, grn, blu);
}
}
void RGBController_AuraMouse::SetCustomMode()
{
active_mode = 0;
}
void RGBController_AuraMouse::DeviceUpdateMode()
{
unsigned char red = 0;
unsigned char grn = 0;
unsigned char blu = 0;
if(modes[active_mode].color_mode == MODE_COLORS_PER_LED)
{
red = RGBGetRValue(colors[0]);
grn = RGBGetGValue(colors[0]);
blu = RGBGetBValue(colors[0]);
aura->SendUpdate(AURA_MOUSE_ZONE_LOGO, modes[active_mode].value, red, grn, blu);
red = RGBGetRValue(colors[1]);
grn = RGBGetGValue(colors[1]);
blu = RGBGetBValue(colors[1]);
aura->SendUpdate(AURA_MOUSE_ZONE_SCROLL, modes[active_mode].value, red, grn, blu);
red = RGBGetRValue(colors[2]);
grn = RGBGetGValue(colors[2]);
blu = RGBGetBValue(colors[2]);
aura->SendUpdate(AURA_MOUSE_ZONE_UNDERGLOW, modes[active_mode].value, red, grn, blu);
}
else
{
aura->SendUpdate(AURA_MOUSE_ZONE_ALL, modes[active_mode].value, red, grn, blu);
}
}
@@ -1,33 +0,0 @@
/*-----------------------------------------*\
| RGBController_AuraMouse.h |
| |
| Generic RGB Interface for Asus Aura |
| USB controller driver |
| |
| Adam Honse (CalcProgrammer1) 10/25/2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "AuraMouseController.h"
class RGBController_AuraMouse : public RGBController
{
public:
RGBController_AuraMouse(AuraMouseController* aura_ptr);
~RGBController_AuraMouse();
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
AuraMouseController* aura;
};
@@ -1,283 +0,0 @@
/*-------------------------------------------------------------------*\
| CMARGBController.cpp |
| |
| Driver for Coolermaster ARGB USB Controller |
| |
| Chris M (Dr_No) 10th Oct 2020 |
| |
\*-------------------------------------------------------------------*/
#include "CMARGBcontroller.h"
#include <cstring>
static unsigned char argb_colour_index_data[2][2][2] =
{ //B0 B1
{ { 0x00, 0x03 }, //G0 R0
{ 0x02, 0x06 }, }, //G1 R0
{ { 0x01, 0x05 }, //G0 R1
{ 0x04, 0x07 }, } //G1 R1
};
static unsigned char argb_mode_data[2][9] =
{
{ 0x05, 0x01, 0x02, 0x03, 0x04, 0x01, 0x01, 0x01, 0x01 }, //12v RGB Mode values
{ 0x0A, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x08, 0x09 } //5v ARGB Mode values
};
CMARGBController::CMARGBController(hid_device* dev_handle, char *_path, unsigned char _zone_idx)
{
const int szTemp = 256;
wchar_t tmpName[szTemp];
dev = dev_handle;
location = _path;
zone_index = _zone_idx;
current_speed = CM_ARGB_SPEED_NORMAL;
hid_get_manufacturer_string(dev, tmpName, szTemp);
std::wstring wName = std::wstring(tmpName);
device_name = std::string(wName.begin(), wName.end());
hid_get_product_string(dev, tmpName, szTemp);
wName = std::wstring(tmpName);
device_name.append(" ").append(std::string(wName.begin(), wName.end()));
hid_get_serial_number_string(dev, tmpName, szTemp);
wName = std::wstring(tmpName);
serial = std::string(wName.begin(), wName.end());
GetStatus();
}
CMARGBController::~CMARGBController()
{
hid_close(dev);
}
void CMARGBController::GetStatus()
{
unsigned char buffer[0x40] = { 0x00 };
int buffer_size = (sizeof(buffer) / sizeof(buffer[0]));
int header = zone_index - 1;
/*buffer[CM_ARGB_REPORT_BYTE] = 0x80;
buffer[CM_ARGB_COMMAND_BYTE] = 0x01;
buffer[CM_ARGB_FUNCTION_BYTE] = 0x01;
hid_write(dev, buffer, buffer_size);
buffer[CM_ARGB_COMMAND_BYTE] = 0x0b;
buffer[CM_ARGB_FUNCTION_BYTE] = 0x03;
buffer[CM_ARGB_ZONE_BYTE] = 0xFF;
hid_write(dev, buffer, buffer_size);
int i = 0;
do{
hid_read_timeout(dev, buffer, buffer_size, CM_ARGB_INTERRUPT_TIMEOUT);
i++;
}while( (i < 4) );
current_mode = argb_mode_data[1][buffer[4]];
current_speed = buffer[5];*/
}
std::string CMARGBController::GetDeviceName()
{
return device_name;
}
std::string CMARGBController::GetSerial()
{
return serial;
}
std::string CMARGBController::GetLocation()
{
return location;
}
unsigned char CMARGBController::GetZoneIndex()
{
return zone_index;
}
unsigned char CMARGBController::GetMode()
{
return current_mode;
}
unsigned char CMARGBController::GetLedRed()
{
return current_red;
}
unsigned char CMARGBController::GetLedGreen()
{
return current_green;
}
unsigned char CMARGBController::GetLedBlue()
{
return current_blue;
}
unsigned char CMARGBController::GetLedSpeed()
{
return current_speed;
}
unsigned int CMARGBController::GetLargestColour(unsigned int red, unsigned int green, unsigned int blue)
{
unsigned int largest;
if ( red > green )
{
( red > blue ) ? largest = red : largest = blue;
}
else
{
( green > blue ) ? largest = green : largest = blue;
}
return (largest == 0) ? 1 : largest;
}
unsigned char CMARGBController::GetColourIndex(unsigned char red, unsigned char green, unsigned char blue)
{
//The Coolermaster ARGB controller uses a limited colour pallette referenced by an index
//Starting at 0x00 Random, 0x01 Red, 0x02 Green, 0x03 Blue, 0x04 Yellow, 0x05 Purple, 0x06 Cyan, 0x07 White
//The index can be calculated by normalising the input colour, rounding those values
//and using them as the indicies of a 3d array containing the correct index
unsigned int divisor = GetLargestColour( red, green, blue);
unsigned int r = round( red / divisor );
unsigned int g = round( green / divisor );
unsigned int b = round( blue / divisor );
unsigned char idx = argb_colour_index_data[r][g][b];
return idx;
}
void CMARGBController::SetMode(unsigned char mode, unsigned char speed)
{
current_mode = mode;
current_speed = speed;
SendUpdate();
}
void CMARGBController::SetColor(unsigned char red, unsigned char green, unsigned char blue)
{
current_red = red;
current_green = green;
current_blue = blue;
SendUpdate();
}
void CMARGBController::SetLedsDirect(RGBColor *led_colours, unsigned int led_count)
{
const unsigned char buffer_size = 0x41;
unsigned char buffer[buffer_size] = { 0x00 };
unsigned char packet_count = 0x00;
std::vector<unsigned char> colours;
//Set up the RGB triplets to send
for(int i = 0; i < led_count; i++)
{
RGBColor colour = led_colours[i];
unsigned char r = RGBGetRValue(colour);
unsigned char g = RGBGetGValue(colour);
unsigned char b = RGBGetBValue(colour);
colours.push_back(r);
colours.push_back(g);
colours.push_back(b);
}
//buffer[CM_ARGB_REPORT_BYTE] = packet_count;
buffer[CM_ARGB_COMMAND_BYTE] = 0x10;
buffer[CM_ARGB_FUNCTION_BYTE] = 0x02;
buffer[CM_ARGB_ZONE_BYTE] = argb_header_data[zone_index].header;
buffer[CM_ARGB_MODE_BYTE] = 0x30; //30 might be the LED count??
unsigned char buffer_idx = CM_ARGB_MODE_BYTE + 1; //Start colour info from
for (std::vector<unsigned char>::iterator it = colours.begin(); it != colours.end(); buffer_idx = 0)
{
//Fill the write buffer till its full or the colour buffer is empty
buffer[CM_ARGB_REPORT_BYTE] = packet_count;
while (( buffer_idx < buffer_size) && ( it != colours.end() ))
{
buffer[buffer_idx] = *it;
buffer_idx++;
it++;
}
hid_write(dev, buffer, buffer_size);
hid_read_timeout(dev, buffer, buffer_size, CM_ARGB_INTERRUPT_TIMEOUT);
//reset the write buffer
memset(buffer, 0x00, sizeof(buffer) );
packet_count++;
}
buffer[CM_ARGB_REPORT_BYTE] = 0x82;
buffer[CM_ARGB_COMMAND_BYTE] = 0x62;
buffer[CM_ARGB_FUNCTION_BYTE] = 0x00;
buffer[CM_ARGB_ZONE_BYTE] = 0x73;
buffer[CM_ARGB_MODE_BYTE] = 0x00;
buffer[CM_ARGB_COLOUR_INDEX_BYTE] = 0x33;
buffer[CM_ARGB_SPEED_BYTE] = 0x1B;
hid_write(dev, buffer, buffer_size);
hid_read_timeout(dev, buffer, buffer_size, CM_ARGB_INTERRUPT_TIMEOUT);
}
void CMARGBController::SendUpdate()
{
unsigned char buffer[0x40] = { 0x00 };
int buffer_size = (sizeof(buffer) / sizeof(buffer[0]));
bool boolARGB_header = argb_header_data[zone_index].digital;
bool boolPassthru = ( current_mode == CM_ARGB_MODE_PASSTHRU );
bool boolDirect = ( current_mode == CM_ARGB_MODE_DIRECT );
unsigned char function = boolPassthru ? 0x02 : ( boolARGB_header ? 0x03 : 0x01);
buffer[CM_ARGB_REPORT_BYTE] = 0x80;
buffer[CM_ARGB_COMMAND_BYTE] = boolDirect ? 0x10 : 0x01;
buffer[CM_ARGB_FUNCTION_BYTE] = boolDirect ? 0x01 : function;
if ( boolDirect )
{
buffer[CM_ARGB_COMMAND_BYTE] = 0x10;
buffer[CM_ARGB_FUNCTION_BYTE] = 0x01;
buffer[CM_ARGB_ZONE_BYTE] = argb_header_data[zone_index].header;
buffer[CM_ARGB_MODE_BYTE] = 0x30; //30 might be the LED count??
//hid_write(dev, buffer, buffer_size);
//hid_read_timeout(dev, buffer, buffer_size, CM_ARGB_INTERRUPT_TIMEOUT);
}
else
{
buffer[CM_ARGB_COMMAND_BYTE] = 0x01;
buffer[CM_ARGB_FUNCTION_BYTE] = function;
}
hid_write(dev, buffer, buffer_size);
if ( boolARGB_header )
{
buffer[CM_ARGB_COMMAND_BYTE] = 0x0b; //ARGB sends 0x0b (1011) RGB sends 0x04 (0100)
buffer[CM_ARGB_FUNCTION_BYTE] = (false) ? 0x01 : 0x02; //This controls custom mode TODO
buffer[CM_ARGB_ZONE_BYTE] = argb_header_data[zone_index].header;
buffer[CM_ARGB_MODE_BYTE] = argb_mode_data[1][current_mode];
buffer[CM_ARGB_COLOUR_INDEX_BYTE] = GetColourIndex( current_red, current_green, current_blue );
buffer[CM_ARGB_SPEED_BYTE] = current_speed;
hid_write(dev, buffer, buffer_size);
hid_read_timeout(dev, buffer, buffer_size, CM_ARGB_INTERRUPT_TIMEOUT);
}
else
{
buffer[CM_ARGB_COMMAND_BYTE] = 0x04; //ARGB sends 0x0b (1011) RGB sends 0x04 (0100)
buffer[CM_ARGB_MODE_BYTE + CM_RGB_OFFSET] = argb_mode_data[0][current_mode];
buffer[CM_ARGB_COLOUR_INDEX_BYTE + CM_RGB_OFFSET] = GetColourIndex( current_red, current_green, current_blue );
buffer[CM_ARGB_SPEED_BYTE + CM_RGB_OFFSET] = current_speed;
hid_write(dev, buffer, buffer_size);
hid_read_timeout(dev, buffer, buffer_size, CM_ARGB_INTERRUPT_TIMEOUT);
}
}
@@ -1,127 +0,0 @@
/*-------------------------------------------------------------------*\
| CMARGBController.h |
| |
| Driver for Coolermaster ARGB USB Controller |
| |
| Chris M (Dr_No) 10th Oct 2020 |
| |
| Simple RGB device with 5 modes |
| |
\*-------------------------------------------------------------------*/
#include <string>
#include <array>
#include <cmath> //Needed by round()
#include <hidapi/hidapi.h>
#include "RGBController.h" //Needed to set the direct mode
#pragma once
#define CM_ARGB_COLOUR_MODE_DATA_SIZE (sizeof(colour_mode_data[0]) / sizeof(colour_mode_data[0][0]))
#define CM_ARGB_HEADER_DATA_SIZE (sizeof(argb_header_data) / sizeof(argb_headers) )
#define CM_ARGB_INTERRUPT_TIMEOUT 250
#define CM_ARGB_DEVICE_NAME_SIZE (sizeof(device_name) / sizeof(device_name[ 0 ]))
#define CM_RGB_OFFSET -2
#define HID_MAX_STR 255
enum
{
CM_ARGB_REPORT_BYTE = 1,
CM_ARGB_COMMAND_BYTE = 2,
CM_ARGB_FUNCTION_BYTE = 3,
CM_ARGB_ZONE_BYTE = 4,
CM_ARGB_MODE_BYTE = 5,
CM_ARGB_COLOUR_INDEX_BYTE = 6,
CM_ARGB_SPEED_BYTE = 7
};
struct argb_headers
{
const char* name;
unsigned char header;
bool digital;
unsigned int count;
};
static argb_headers argb_header_data[6] =
{
{ "RGB Header", 0xFF, false, 1 },
{ "Digital ARGB1", 0x01, true, 12 },
{ "Digital ARGB2", 0x02, true, 12 },
{ "Digital ARGB3", 0x04, true, 12 },
{ "Digital ARGB4", 0x08, true, 12 },
{ "All Digital ARGB", 0xFF, true, 12 }
};
enum
{
CM_RGB_MODE_OFF = 0, //Turn off
CM_RGB_MODE_COLOUR_CYCLE = 1, //Colour Cycle
CM_RGB_MODE_FLASH = 2, //Flash
CM_RGB_MODE_BREATHING = 3, //Breathing
CM_RGB_MODE_PASSTHRU = 4 //Motherboard Pass Thru Mode
};
enum
{
CM_ARGB_MODE_OFF = 0, //Turn off
CM_ARGB_MODE_SPECTRUM = 1, //Spectrum Mode
CM_ARGB_MODE_RELOAD = 2, //Reload Mode
CM_ARGB_MODE_RECOIL = 3, //Recoil Mode
CM_ARGB_MODE_BREATHING = 4, //Breathing Mode
CM_ARGB_MODE_REFILL = 5, //Refill Mode
CM_ARGB_MODE_DEMO = 6, //Demo Mode
CM_ARGB_MODE_FILLFLOW = 7, //Fill Flow Mode
CM_ARGB_MODE_RAINBOW = 8, //Rainbow Mode
CM_ARGB_MODE_DIRECT = 0xFE, //Direct Led Control
CM_ARGB_MODE_PASSTHRU = 0xFF //Motherboard Pass Thru Mode
};
enum
{
CM_ARGB_SPEED_SLOWEST = 0x00, // Slowest speed
CM_ARGB_SPEED_SLOW = 0x01, // Slower speed
CM_ARGB_SPEED_NORMAL = 0x02, // Normal speed
CM_ARGB_SPEED_FAST = 0x03, // Fast speed
CM_ARGB_SPEED_FASTEST = 0x04, // Fastest speed
};
class CMARGBController
{
public:
CMARGBController(hid_device* dev_handle, char *_path, unsigned char _zone_idx);
~CMARGBController();
std::string GetDeviceName();
std::string GetSerial();
std::string GetLocation();
unsigned char GetZoneIndex();
unsigned char GetMode();
unsigned char GetLedRed();
unsigned char GetLedGreen();
unsigned char GetLedBlue();
unsigned char GetLedSpeed();
void SetMode(unsigned char mode, unsigned char speed);
void SetColor(unsigned char red, unsigned char green, unsigned char blue);
void SetLedsDirect(RGBColor * led_colours, unsigned int led_count);
private:
std::string device_name;
std::string serial;
std::string location;
hid_device* dev;
unsigned char zone_index;
unsigned char current_mode;
unsigned char current_speed;
unsigned char current_red;
unsigned char current_green;
unsigned char current_blue;
unsigned int GetLargestColour(unsigned int red, unsigned int green, unsigned int blue);
unsigned char GetColourIndex(unsigned char red, unsigned char green, unsigned char blue);
void GetStatus();
void SendUpdate();
};
@@ -9,40 +9,23 @@
#include "CMMP750Controller.h"
static unsigned char colour_mode_data[][6] =
{
{ 0x01, 0x04, 0xFF, 0x00, 0xFF, 0x00 }, /* Static */
{ 0x02, 0x04, 0xFF, 0x00, 0xFF, 0x80 }, /* Blinking */
{ 0x03, 0x04, 0xFF, 0x00, 0xFF, 0x80 }, /* Breathing */
{ 0x04, 0x04, 0x80, 0x00, 0x00, 0x00 }, /* Colour Cycle */
{ 0x05, 0x04, 0x80, 0x00, 0x00, 0x00 } /* Colour Breath */
};
static unsigned char speed_mode_data[][9] =
{
{ 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 },/* Static */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 },/* Blinking */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 },/* Breathing */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 },/* Colour Cycle */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 } /* Colour Breath */
};
CMMP750Controller::CMMP750Controller(hid_device* dev_handle, wchar_t *_vendor, wchar_t *_device_name, char *_path)
{
std::size_t tmp_size = wcslen(_vendor);
dev = dev_handle;
location = _path;
int tmp_size = wcslen(_vendor);
for(std::size_t i = 0; (i < tmp_size) && (i < CM_DEVICE_NAME_SIZE); i++)
dev = dev_handle;
for (int i=0; ( i<tmp_size && i<CM_DEVICE_NAME_SIZE); i++)
{
device_name[i] = (char)_vendor[i];
}
for(std::size_t j = 0; (j < wcslen(_vendor)) && (tmp_size + j < CM_DEVICE_NAME_SIZE); j++)
{
device_name[tmp_size + j] = (char)_device_name[j];
}
for (int j=0; ( j<wcslen(_vendor) && tmp_size+j<CM_DEVICE_NAME_SIZE); j++)
device_name[tmp_size+j] = (char)_device_name[j];
GetStatus(); //When setting up device get current status
location = _path;
current_mode = MP750_MODE_STATIC;
current_speed = MP750_SPEED_NORMAL;
}
CMMP750Controller::~CMMP750Controller()
@@ -50,38 +33,6 @@ CMMP750Controller::~CMMP750Controller()
hid_close(dev);
}
void CMMP750Controller::GetStatus()
{
unsigned char buffer[0x40] = { 0x00 };
int buffer_size = (sizeof(buffer) / sizeof(buffer[0]));
buffer[0] = 0x07;
hid_write(dev, buffer, buffer_size);
hid_read(dev, buffer, buffer_size);
if((buffer[0] == 0x80) && (buffer[1] == 0x05))
{
current_mode = buffer[2] - 1;
current_red = buffer[3];
current_green = buffer[4];
current_blue = buffer[5];
for(int i = 0; speed_mode_data[current_mode][i] >= buffer[6]; i++)
{
current_speed = i;
}
}
else
{
//Code should never reach here however just in case there is a failure set something
current_mode = MP750_MODE_COLOR_CYCLE; //Unicorn Spew
current_red = 0xFF;
current_green = 0xFF;
current_blue = 0xFF;
current_speed = MP750_SPEED_NORMAL;
}
}
char* CMMP750Controller::GetDeviceName()
{
return device_name;
@@ -97,31 +48,6 @@ std::string CMMP750Controller::GetLocation()
return location;
}
unsigned char CMMP750Controller::GetMode()
{
return current_mode;
}
unsigned char CMMP750Controller::GetLedRed()
{
return current_red;
}
unsigned char CMMP750Controller::GetLedGreen()
{
return current_green;
}
unsigned char CMMP750Controller::GetLedBlue()
{
return current_blue;
}
unsigned char CMMP750Controller::GetLedSpeed()
{
return current_speed;
}
void CMMP750Controller::SetMode(unsigned char mode, unsigned char speed)
{
current_mode = mode;
@@ -144,7 +70,7 @@ void CMMP750Controller::SendUpdate()
unsigned char buffer[0x40] = { 0x00 };
int buffer_size = (sizeof(buffer) / sizeof(buffer[0]));
for(std::size_t i = 0; i < CM_COLOUR_MODE_DATA_SIZE; i++)
for(int i = 0; i < CM_COLOUR_MODE_DATA_SIZE; i++)
{
buffer[i] = colour_mode_data[current_mode][i];
}
@@ -152,16 +78,16 @@ void CMMP750Controller::SendUpdate()
if(current_mode > MP750_MODE_BREATHING)
{
//If the mode is random colours set SPEED at BYTE2
buffer[CM_RED_BYTE] = speed_mode_data[current_mode][current_speed];
buffer[CM_RED_BYTE] = speed_mode_data[current_mode][current_speed];
}
else
{
//Otherwise SPEED is BYTE5
buffer[CM_RED_BYTE] = current_red;
buffer[CM_GREEN_BYTE] = current_green;
buffer[CM_BLUE_BYTE] = current_blue;
buffer[CM_SPEED_BYTE] = speed_mode_data[current_mode][current_speed];
buffer[CM_RED_BYTE] = current_red;
buffer[CM_GREEN_BYTE] = current_green;
buffer[CM_BLUE_BYTE] = current_blue;
buffer[CM_SPEED_BYTE] = speed_mode_data[current_mode][current_speed];
}
hid_write(dev, buffer, buffer_size);
}
}
@@ -20,7 +20,7 @@
#pragma once
#define CM_COLOUR_MODE_DATA_SIZE (sizeof(colour_mode_data[0]) / sizeof(colour_mode_data[0][0]))
#define CM_COLOUR_MODE_DATA_SIZE (sizeof(colour_mode_data) / sizeof(colour_mode_data[0]))
#define CM_INTERRUPT_TIMEOUT 250
#define CM_DEVICE_NAME_SIZE (sizeof(device_name) / sizeof(device_name[ 0 ]))
#define CM_SERIAL_SIZE (sizeof(serial) / sizeof(serial[ 0 ]))
@@ -44,6 +44,24 @@ enum
MP750_MODE_BREATH_CYCLE = 0x04 //Breathing Cycle Mode
};
static unsigned char colour_mode_data[][6] =
{
{ 0x01, 0x04, 0xFF, 0x00, 0xFF, 0x00 }, /* Static */
{ 0x02, 0x04, 0xFF, 0x00, 0xFF, 0x80 }, /* Blinking */
{ 0x03, 0x04, 0xFF, 0x00, 0xFF, 0x80 }, /* Breathing */
{ 0x04, 0x04, 0x80, 0x00, 0x00, 0x00 }, /* Colour Cycle */
{ 0x05, 0x04, 0x80, 0x00, 0x00, 0x00 } /* Colour Breath */
};
static unsigned char speed_mode_data[][9] =
{
{ 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 },/* Static */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 },/* Blinking */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 },/* Breathing */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 },/* Colour Cycle */
{ 0xFF, 0xE0, 0xC0, 0xA0, 0x80, 0x60, 0x40, 0x20, 0x00 } /* Colour Breath */
};
enum
{
MP750_SPEED_SLOWEST = 0x00, /* Slowest speed */
@@ -67,11 +85,6 @@ public:
char* GetSerial();
std::string GetLocation();
unsigned char GetMode();
unsigned char GetLedRed();
unsigned char GetLedGreen();
unsigned char GetLedBlue();
unsigned char GetLedSpeed();
void SetMode(unsigned char mode, unsigned char speed);
void SetColor(unsigned char red, unsigned char green, unsigned char blue);
@@ -88,6 +101,5 @@ private:
unsigned char current_green;
unsigned char current_blue;
void GetStatus();
void SendUpdate();
};
@@ -1,33 +1,25 @@
#include "Detector.h"
#include "CMMP750Controller.h"
#include "CMARGBcontroller.h"
#include "RGBController.h"
#include "RGBController_CMMP750Controller.h"
#include "RGBController_CMARGBController.h"
#include <hidapi/hidapi.h>
#define COOLERMASTER_VID 0x2516
#define COOLERMASTER_MP750_XL_PID 0x0109
#define COOLERMASTER_MP750_MEDIUM_PID 0x0105
#define COOLERMASTER_ARGB_PID 0x1011
#define COOLERMASTER_NUM_DEVICES (sizeof(cm_pids) / sizeof(cm_pids[ 0 ]))
struct coolermaster_device
enum
{
unsigned int product_id;
unsigned short interface;
unsigned int usage_page;
unsigned int usage;
device_type type;
CM_PID = 0,
CM_INTERFACE = 1
};
static const coolermaster_device cm_pids[] =
{ // PID, Interface, Usage_Page, Usage, Device_Type
{ COOLERMASTER_MP750_XL_PID, 0x00, 0xFF00, 0x01, DEVICE_TYPE_MOUSEMAT }, //Coolermaster MP750 (Extra Large)
{ COOLERMASTER_MP750_MEDIUM_PID, 0x00, 0xFF00, 0x01, DEVICE_TYPE_MOUSEMAT }, //Coolermaster MP750 (Medium)
{ COOLERMASTER_ARGB_PID, 0x00, 0xFF00, 0x01, DEVICE_TYPE_LEDSTRIP } //Coolermaster ARGB Controller
static const unsigned int cm_pids[][4] =
{ // PID, Interface
{ COOLERMASTER_MP750_XL_PID, 0x00 }, //Coolermaster MP750 (Extra Large)
{ COOLERMASTER_MP750_MEDIUM_PID, 0x00 } //Coolermaster MP750 (Medium)
};
/******************************************************************************************\
@@ -44,27 +36,19 @@ void DetectCoolerMasterControllers(std::vector<RGBController*>& rgb_controllers)
//Look for the passed in cm_pids
hid_init();
info = hid_enumerate(COOLERMASTER_VID, 0x0);
info = hid_enumerate(0x0, 0x0);
while(info)
{
hid_device* dev = NULL;
device_type dev_type;
if(info->vendor_id == COOLERMASTER_VID)
{
for(unsigned int cm_pid_idx = 0; cm_pid_idx < COOLERMASTER_NUM_DEVICES; cm_pid_idx++)
for(int cm_pid_idx = 0; cm_pid_idx < COOLERMASTER_NUM_DEVICES; cm_pid_idx++)
{
if((info->product_id == cm_pids[cm_pid_idx].product_id)
#ifdef USE_HID_USAGE
&&(info->usage == cm_pids[cm_pid_idx].usage) //Usage and usage page required to get the correct interface
&&(info->usage_page == cm_pids[cm_pid_idx].usage_page))
#else
&&(info->interface_number == cm_pids[cm_pid_idx].interface))
#endif //USE_HID_USAGE
if((info->product_id == cm_pids[cm_pid_idx][CM_PID])
&&(info->interface_number == cm_pids[cm_pid_idx][CM_INTERFACE]))
{
dev = hid_open_path(info->path);
dev_type = cm_pids[cm_pid_idx].type;
dev = hid_open_path(info->path);
break;
}
}
@@ -72,26 +56,11 @@ void DetectCoolerMasterControllers(std::vector<RGBController*>& rgb_controllers)
if(dev)
{
if (dev_type == DEVICE_TYPE_MOUSEMAT)
{
CMMP750Controller* controller = new CMMP750Controller(dev, info->manufacturer_string, info->product_string, info->path);
RGBController_CMMP750Controller* rgb_controller = new RGBController_CMMP750Controller(controller);
rgb_controllers.push_back(rgb_controller);
}
else if(dev_type == DEVICE_TYPE_LEDSTRIP)
{
for(std::size_t i = 0; i < CM_ARGB_HEADER_DATA_SIZE; i++)
{
CMARGBController* controller = new CMARGBController(dev, info->path, i);
RGBController_CMARGBController* rgb_controller = new RGBController_CMARGBController(controller);
rgb_controllers.push_back(rgb_controller);
}
}
CMMP750Controller* controller = new CMMP750Controller(dev, info->manufacturer_string, info->product_string, info->path);
RGBController_CMMP750Controller* rgb_controller = new RGBController_CMMP750Controller(controller);
rgb_controllers.push_back(rgb_controller);
}
info = info->next;
}
hid_free_enumeration(info);
} /* DetectCoolerMasterControllers() */
REGISTER_DETECTOR("Cooler Master", DetectCoolerMasterControllers);
}
@@ -1,314 +0,0 @@
/*-------------------------------------------------------------------*\
| RGBController_CMARGBController.cpp |
| |
| Driver for Coolermaster ARGB Controller |
| |
| Chris M (Dr_No) 14th Oct 2020 |
| |
\*-------------------------------------------------------------------*/
#include "RGBController_CMARGBController.h"
RGBController_CMARGBController::RGBController_CMARGBController(CMARGBController *cmargb_ptr)
{
cmargb = cmargb_ptr;
unsigned char speed = cmargb->GetLedSpeed();
name = argb_header_data[cmargb->GetZoneIndex()].name;
type = DEVICE_TYPE_LEDSTRIP;
description = cmargb->GetDeviceName();
version = "1.0";
serial = cmargb->GetSerial();
location = cmargb->GetLocation();
if ( argb_header_data[cmargb->GetZoneIndex()].digital)
{
mode Off;
Off.name = "Turn Off";
Off.value = CM_ARGB_MODE_OFF;
Off.color_mode = MODE_COLORS_NONE;
modes.push_back(Off);
mode Reload;
Reload.name = "Reload";
Reload.value = CM_ARGB_MODE_RELOAD;
Reload.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR | MODE_FLAG_HAS_RANDOM_COLOR;
Reload.colors_min = 1;
Reload.colors_max = 1;
Reload.colors.resize(Reload.colors_max);
Reload.speed_min = CM_ARGB_SPEED_SLOWEST;
Reload.speed_max = CM_ARGB_SPEED_FASTEST;
Reload.color_mode = MODE_COLORS_RANDOM;
Reload.speed = speed;
modes.push_back(Reload);
mode Recoil;
Recoil.name = "Recoil";
Recoil.value = CM_ARGB_MODE_RECOIL;
Recoil.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR | MODE_FLAG_HAS_RANDOM_COLOR;
Recoil.colors_min = 1;
Recoil.colors_max = 1;
Recoil.colors.resize(Reload.colors_max);
Recoil.speed_min = CM_ARGB_SPEED_SLOWEST;
Recoil.speed_max = CM_ARGB_SPEED_FASTEST;
Recoil.color_mode = MODE_COLORS_RANDOM;
Recoil.speed = speed;
modes.push_back(Recoil);
mode Breathing;
Breathing.name = "Breathing";
Breathing.value = CM_ARGB_MODE_BREATHING;
Breathing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR | MODE_FLAG_HAS_RANDOM_COLOR;
Breathing.colors_min = 1;
Breathing.colors_max = 1;
Breathing.colors.resize(Reload.colors_max);
Breathing.speed_min = CM_ARGB_SPEED_SLOWEST;
Breathing.speed_max = CM_ARGB_SPEED_FASTEST;
Breathing.color_mode = MODE_COLORS_RANDOM;
Breathing.speed = speed;
modes.push_back(Breathing);
mode Refill;
Refill.name = "Refill";
Refill.value = CM_ARGB_MODE_REFILL;
Refill.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR | MODE_FLAG_HAS_RANDOM_COLOR;
Refill.colors_min = 1;
Refill.colors_max = 1;
Refill.colors.resize(Reload.colors_max);
Refill.speed_min = CM_ARGB_SPEED_SLOWEST;
Refill.speed_max = CM_ARGB_SPEED_FASTEST;
Refill.color_mode = MODE_COLORS_RANDOM;
Refill.speed = speed;
modes.push_back(Refill);
mode Demo;
Demo.name = "Demo";
Demo.value = CM_ARGB_MODE_DEMO;
Demo.flags = MODE_FLAG_HAS_SPEED;
Demo.speed_min = CM_ARGB_SPEED_SLOWEST;
Demo.speed_max = CM_ARGB_SPEED_FASTEST;
Demo.color_mode = MODE_COLORS_NONE;
Demo.speed = speed;
modes.push_back(Demo);
mode Spectrum;
Spectrum.name = "Spectrum";
Spectrum.value = CM_ARGB_MODE_SPECTRUM;
Spectrum.flags = MODE_FLAG_HAS_SPEED;
Spectrum.speed_min = CM_ARGB_SPEED_SLOWEST;
Spectrum.speed_max = CM_ARGB_SPEED_FASTEST;
Spectrum.color_mode = MODE_COLORS_NONE;
Spectrum.speed = speed;
modes.push_back(Spectrum);
mode FillFlow;
FillFlow.name = "Fill Flow";
FillFlow.value = CM_ARGB_MODE_FILLFLOW;
FillFlow.flags = MODE_FLAG_HAS_SPEED;
FillFlow.speed_min = CM_ARGB_SPEED_SLOWEST;
FillFlow.speed_max = CM_ARGB_SPEED_FASTEST;
FillFlow.color_mode = MODE_COLORS_NONE;
FillFlow.speed = speed;
modes.push_back(FillFlow);
mode Rainbow;
Rainbow.name = "Rainbow";
Rainbow.value = CM_ARGB_MODE_RAINBOW;
Rainbow.flags = MODE_FLAG_HAS_SPEED;
Rainbow.speed_min = CM_ARGB_SPEED_SLOWEST;
Rainbow.speed_max = CM_ARGB_SPEED_FASTEST;
Rainbow.color_mode = MODE_COLORS_NONE;
Rainbow.speed = speed;
modes.push_back(Rainbow);
mode Direct;
Direct.name = "Direct";
Direct.value = CM_ARGB_MODE_DIRECT;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
mode PassThru;
PassThru.name = "Pass Thru";
PassThru.value = CM_ARGB_MODE_PASSTHRU;
PassThru.color_mode = MODE_COLORS_NONE;
modes.push_back(PassThru);
}
else
{
mode Off;
Off.name = "Turn Off";
Off.value = CM_RGB_MODE_OFF;
Off.color_mode = MODE_COLORS_NONE;
modes.push_back(Off);
mode Breathing;
Breathing.name = "Breathing";
Breathing.value = CM_RGB_MODE_BREATHING;
Breathing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR | MODE_FLAG_HAS_RANDOM_COLOR;
Breathing.colors_min = 1;
Breathing.colors_max = 1;
Breathing.colors.resize(Breathing.colors_max);
Breathing.speed_min = CM_ARGB_SPEED_SLOWEST;
Breathing.speed_max = CM_ARGB_SPEED_FASTEST;
Breathing.color_mode = MODE_COLORS_RANDOM;
Breathing.speed = speed;
modes.push_back(Breathing);
mode Flash;
Breathing.name = "Flash";
Breathing.value = CM_RGB_MODE_FLASH;
Breathing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR | MODE_FLAG_HAS_RANDOM_COLOR;
Breathing.colors_min = 1;
Breathing.colors_max = 1;
Breathing.colors.resize(Breathing.colors_max);
Breathing.speed_min = CM_ARGB_SPEED_SLOWEST;
Breathing.speed_max = CM_ARGB_SPEED_FASTEST;
Breathing.color_mode = MODE_COLORS_RANDOM;
Breathing.speed = speed;
modes.push_back(Breathing);
mode ColourCycle;
ColourCycle.name = "Colour Cycle";
ColourCycle.value = CM_RGB_MODE_COLOUR_CYCLE;
ColourCycle.flags = MODE_FLAG_HAS_SPEED;
ColourCycle.speed_min = CM_ARGB_SPEED_SLOWEST;
ColourCycle.speed_max = CM_ARGB_SPEED_FASTEST;
ColourCycle.color_mode = MODE_COLORS_NONE;
ColourCycle.speed = speed;
modes.push_back(ColourCycle);
mode PassThru;
PassThru.name = "Pass Thru";
PassThru.value = CM_RGB_MODE_PASSTHRU;
PassThru.color_mode = MODE_COLORS_NONE;
modes.push_back(PassThru);
}
Init_Controller(); //Only processed on first run
SetupZones();
//active_mode = cmargb->GetMode();
}
RGBController_CMARGBController::~RGBController_CMARGBController()
{
}
void RGBController_CMARGBController::Init_Controller()
{
int zone_idx = cmargb->GetZoneIndex();
int zone_led_count = argb_header_data[zone_idx].count;
bool boolSingleLED = ( zone_led_count == 1 ); //If argb_header_data[zone_idx].count == 1 then the zone is ZONE_TYPE_SINGLE
zone ARGB_zone;
ARGB_zone.name = std::to_string(zone_idx);
ARGB_zone.type = (boolSingleLED) ? ZONE_TYPE_SINGLE : ZONE_TYPE_LINEAR;
ARGB_zone.leds_min = 0;
ARGB_zone.leds_max = 64;
ARGB_zone.leds_count = zone_led_count;
ARGB_zone.matrix_map = NULL;
zones.push_back(ARGB_zone);
}
void RGBController_CMARGBController::SetupZones()
{
/*-------------------------------------------------*\
| Clear any existing color/LED configuration |
\*-------------------------------------------------*/
leds.clear();
colors.clear();
/*---------------------------------------------------------*\
| Set up zones |
\*---------------------------------------------------------*/
for(std::size_t zone_idx = 0; zone_idx < zones.size(); zone_idx++)
{
bool boolSingleLED = (zones[zone_idx].type == ZONE_TYPE_SINGLE); //Calculated for later use
for(unsigned int lp_idx = 0; lp_idx < zones[zone_idx].leds_count; lp_idx++)
{
led new_led;
unsigned int i = std::stoi(zones[zone_idx].name);
if(boolSingleLED)
{
new_led.name = i;
new_led.value = argb_header_data[i].header;
}
else
{
new_led.name = i;
new_led.name.append(" LED " + std::to_string(lp_idx));
new_led.value = argb_header_data[i].header;
}
leds.push_back(new_led);
}
}
SetupColors();
}
void RGBController_CMARGBController::ResizeZone(int zone, int new_size)
{
if((size_t) zone >= zones.size())
{
return;
}
if(((unsigned int)new_size >= zones[zone].leds_min) && ((unsigned int)new_size <= zones[zone].leds_max))
{
zones[zone].leds_count = new_size;
SetupZones();
}
}
void RGBController_CMARGBController::DeviceUpdateLEDs()
{
/*unsigned char red = RGBGetRValue(colors[0]);
unsigned char grn = RGBGetGValue(colors[0]);
unsigned char blu = RGBGetBValue(colors[0]);
cmargb->SetColor(red, grn, blu);*/
//this one
cmargb->SetMode( modes[active_mode].value, modes[active_mode].speed );
cmargb->SetLedsDirect( zones[0].colors, zones[0].leds_count );
}
void RGBController_CMARGBController::UpdateZoneLEDs(int zone)
{
RGBColor colour = colors[zone];
unsigned char red = RGBGetRValue(colour);
unsigned char grn = RGBGetGValue(colour);
unsigned char blu = RGBGetBValue(colour);
cmargb->SetColor(red, grn, blu);
}
void RGBController_CMARGBController::UpdateSingleLED(int led)
{
//cmargb->SetMode( modes[active_mode].value, modes[active_mode].speed );
//cmargb->SetLedsDirect( zones[0].colors, zones[0].leds_count );
}
void RGBController_CMARGBController::SetCustomMode()
{
active_mode = CM_ARGB_MODE_DIRECT;
}
void RGBController_CMARGBController::DeviceUpdateMode()
{
if( modes[active_mode].color_mode == MODE_COLORS_MODE_SPECIFIC )
{
unsigned char red = RGBGetRValue(modes[active_mode].colors[0]);
unsigned char grn = RGBGetGValue(modes[active_mode].colors[0]);
unsigned char blu = RGBGetBValue(modes[active_mode].colors[0]);
cmargb->SetColor(red, grn, blu);
}
else
{
cmargb->SetColor(0, 0, 0); //If the mode is not colour specific then set colour to black for the random index
}
cmargb->SetMode( modes[active_mode].value, modes[active_mode].speed );
}
@@ -1,35 +0,0 @@
/*-------------------------------------------------------------------*\
| RGBController_CMARGBController.h |
| |
| Driver for Coolermaster ARGB Controller |
| |
| Chris M (Dr_No) 14th Oct 2020 |
| |
\*-------------------------------------------------------------------*/
#pragma once
#include "RGBController.h"
#include "CMARGBcontroller.h"
#include <vector>
class RGBController_CMARGBController : public RGBController
{
public:
RGBController_CMARGBController(CMARGBController* cmargb_ptr);
~RGBController_CMARGBController();
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
void Init_Controller();
int GetDeviceMode();
CMARGBController* cmargb;
};
@@ -1,126 +0,0 @@
/*------------------------------------------*\
| CorsairDominatorPlatinumController.cpp |
| |
| Drover for Corsair Domintator Platinum |
| RGB RAM lighting controller |
| |
| Erik Gilling (konkers) 9/25/2020 |
\*------------------------------------------*/
#include "CorsairDominatorPlatinumController.h"
#include <cstring>
using namespace std::chrono_literals;
CorsairDominatorPlatinumController::CorsairDominatorPlatinumController(i2c_smbus_interface *bus, corsair_dev_id dev)
{
this->bus = bus;
this->dev = dev;
led_data[0] = 0xc;
}
CorsairDominatorPlatinumController::~CorsairDominatorPlatinumController()
{
}
std::string CorsairDominatorPlatinumController::GetDeviceName()
{
return "Corsair Dominator Platinum RGB";
}
std::string CorsairDominatorPlatinumController::GetDeviceLocation()
{
std::string return_string(bus->device_name);
char addr[5];
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
}
void CorsairDominatorPlatinumController::SetAllColors
(
unsigned char red,
unsigned char green,
unsigned char blue
)
{
for(unsigned int led = 0; led < CORSAIR_PLAT_LED_COUNT; led++)
{
SetLEDColor(led, red, green, blue);
}
}
void CorsairDominatorPlatinumController::SetLEDColor
(
unsigned int led,
unsigned char red,
unsigned char green,
unsigned char blue
)
{
if(led >= CORSAIR_PLAT_LED_COUNT)
{
return;
}
unsigned int offset = (led * 3) + 1;
led_data[offset] = red;
led_data[offset + 1] = green;
led_data[offset + 2] = blue;
}
unsigned char CorsairDominatorPlatinumController::crc8
(
unsigned char init,
unsigned char poly,
unsigned char* data,
unsigned char len
)
{
unsigned char crc = init;
for(unsigned int i = 0; i < len; i++)
{
unsigned char val = data[i];
for(unsigned char mask = 0x80; mask != 0; mask >>= 1)
{
unsigned char bit;
if ((val & mask) != 0)
{
bit = (crc & 0x80) ^ 0x80;
}
else
{
bit = crc & 0x80;
}
if (bit == 0)
{
crc <<= 1;
}
else
{
crc = (crc << 1) ^ poly;
}
}
}
return crc;
}
void CorsairDominatorPlatinumController::ApplyColors()
{
unsigned char data[sizeof(led_data)];
memcpy(data, led_data, sizeof(led_data));
unsigned char crc = crc8(0x0, 0x7, data, sizeof(data) - 1);
data[sizeof(data) - 1] = crc;
bus->i2c_smbus_write_block_data(dev, 0x31, 0x20, data);
std::this_thread::sleep_for(800us);
bus->i2c_smbus_write_block_data(dev, 0x32, sizeof(data) - 0x20, data + 0x20);
std::this_thread::sleep_for(200us);
}
@@ -1,42 +0,0 @@
/*-----------------------------------------*\
| CorsairDominatorPlatinumController.h |
| |
| Definitions and types for Corsair |
| Domintator Platinum RGB RAM lighting |
| controller |
| |
| Erik Gilling (konkers) 9/25/2020 |
\*-----------------------------------------*/
#include <string>
#include "i2c_smbus.h"
#pragma once
typedef unsigned char corsair_dev_id;
class CorsairDominatorPlatinumController
{
public:
CorsairDominatorPlatinumController(i2c_smbus_interface *bus, corsair_dev_id dev);
~CorsairDominatorPlatinumController();
std::string GetDeviceName();
std::string GetDeviceLocation();
size_t GetLEDCount() { return CORSAIR_PLAT_LED_COUNT; }
void SetAllColors(unsigned char red, unsigned char green, unsigned char blue);
void SetLEDColor(unsigned int led, unsigned char red, unsigned char green, unsigned char blue);
void ApplyColors();
bool WaitReady();
private:
static constexpr size_t CORSAIR_PLAT_LED_COUNT = 12;
unsigned char led_data[CORSAIR_PLAT_LED_COUNT * 3 + 2];
i2c_smbus_interface* bus;
corsair_dev_id dev;
static unsigned char crc8(unsigned char init, unsigned char poly, unsigned char *data, unsigned char len);
};
@@ -1,70 +0,0 @@
#include "Detector.h"
#include "CorsairDominatorPlatinumController.h"
#include "RGBController.h"
#include "RGBController_CorsairDominatorPlatinum.h"
#include "i2c_smbus.h"
#include "pci_ids.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
using namespace std::chrono_literals;
bool TestForCorsairDominatorPlatinumController(i2c_smbus_interface *bus, unsigned char address)
{
int res = bus->i2c_smbus_write_quick(address, I2C_SMBUS_WRITE);
if(res < 0)
{
return false;
}
res = bus->i2c_smbus_read_byte_data(address, 0x43);
if(res != 0x1b)
{
return false;
}
res = bus->i2c_smbus_read_byte_data(address, 0x44);
if(res != 0x04)
{
return false;
}
return true;
}
/******************************************************************************************\
* *
* DetectCorsairDominatorPlatinumControllers *
* *
* Detect Corsair Dominator Platinum controllers on the enumerated I2C busses. *
* *
* bus - pointer to i2c_smbus_interface where Aura device is connected *
* dev - I2C address of Aura device *
* *
\******************************************************************************************/
void DetectCorsairDominatorPlatinumControllers(std::vector<i2c_smbus_interface *> &busses, std::vector<RGBController *> &rgb_controllers)
{
for(unsigned int bus = 0; bus < busses.size(); bus++)
{
IF_DRAM_SMBUS(busses[bus]->pci_vendor, busses[bus]->pci_device)
{
for(unsigned char addr = 0x58; addr <= 0x5f; addr++)
{
if(TestForCorsairDominatorPlatinumController(busses[bus], addr))
{
CorsairDominatorPlatinumController* new_controller = new CorsairDominatorPlatinumController(busses[bus], addr);
RGBController_CorsairDominatorPlatinum* new_rgbcontroller = new RGBController_CorsairDominatorPlatinum(new_controller);
rgb_controllers.push_back(new_rgbcontroller);
}
std::this_thread::sleep_for(10ms);
}
}
}
}
REGISTER_I2C_DETECTOR("Corsair Dominator Platinum", DetectCorsairDominatorPlatinumControllers);
@@ -1,108 +0,0 @@
/*-------------------------------------------------*\
| RGBController_CorsairDominatorPlatinum.cpp |
| |
| Corsair Vengeance Pro RGB driver |
| |
| Erik Gilling (konkers) 9/25/2020 |
\*-------------------------------------------------*/
#include "RGBController_CorsairDominatorPlatinum.h"
RGBController_CorsairDominatorPlatinum::RGBController_CorsairDominatorPlatinum(CorsairDominatorPlatinumController* corsair_ptr)
{
corsair = corsair_ptr;
name = corsair->GetDeviceName();
type = DEVICE_TYPE_DRAM;
description = "Corsair Dominator Platinum RGB Device";
location = corsair->GetDeviceLocation();
mode Direct;
Direct.name = "Direct";
Direct.value = 0;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.speed_min = 0;
Direct.speed_max = 0;
Direct.speed = 0;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
SetupZones();
active_mode = 0;
}
void RGBController_CorsairDominatorPlatinum::SetupZones()
{
/*---------------------------------------------------------*\
| Set up zone |
\*---------------------------------------------------------*/
zone new_zone;
new_zone.name = "Corsair Platinum Zone";
new_zone.type = ZONE_TYPE_LINEAR;
new_zone.leds_min = corsair->GetLEDCount();
new_zone.leds_max = corsair->GetLEDCount();
new_zone.leds_count = corsair->GetLEDCount();
new_zone.matrix_map = NULL;
zones.push_back(new_zone);
/*---------------------------------------------------------*\
| Set up LEDs |
\*---------------------------------------------------------*/
for(std::size_t led_idx = 0; led_idx < zones[0].leds_count; led_idx++)
{
led *new_led = new led();
new_led->name = "Corsair Platinum LED ";
new_led->name.append(std::to_string(led_idx));
leds.push_back(*new_led);
}
SetupColors();
}
void RGBController_CorsairDominatorPlatinum::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_CorsairDominatorPlatinum::DeviceUpdateLEDs()
{
for(std::size_t led = 0; led < colors.size(); led++)
{
RGBColor color = colors[led];
unsigned char red = RGBGetRValue(color);
unsigned char grn = RGBGetGValue(color);
unsigned char blu = RGBGetBValue(color);
corsair->SetLEDColor(led, red, grn, blu);
}
corsair->ApplyColors();
}
void RGBController_CorsairDominatorPlatinum::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_CorsairDominatorPlatinum::UpdateSingleLED(int led)
{
RGBColor color = colors[led];
unsigned char red = RGBGetRValue(color);
unsigned char grn = RGBGetGValue(color);
unsigned char blu = RGBGetBValue(color);
corsair->SetLEDColor(led, red, grn, blu);
corsair->ApplyColors();
}
void RGBController_CorsairDominatorPlatinum::SetCustomMode()
{
active_mode = 0;
}
void RGBController_CorsairDominatorPlatinum::DeviceUpdateMode()
{
}
@@ -1,32 +0,0 @@
/*--------------------------------------------*\
| RGBController_CorsairDominatorPlatinum.h |
| |
| Corsair Dominator Platinum RGB driver |
| |
| Erik Gilling (konkers) 9/25/2020 |
\*--------------------------------------------*/
#pragma once
#include "RGBController.h"
#include "CorsairDominatorPlatinumController.h"
class RGBController_CorsairDominatorPlatinum : public RGBController
{
public:
RGBController_CorsairDominatorPlatinum(CorsairDominatorPlatinumController* corsair_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
CorsairDominatorPlatinumController* corsair;
};
@@ -1,251 +0,0 @@
/*---------------------------------------------------------*\
| Processing Code for Corsair Hydro Series |
| |
| Adam Honse ([email protected]), 8/17/2020 |
\*---------------------------------------------------------*/
#include "CorsairHydroController.h"
#include <cstring>
CorsairHydroController::CorsairHydroController(libusb_device_handle* dev_handle)
{
dev = dev_handle;
SendInit();
SendFirmwareRequest();
}
std::string CorsairHydroController::GetFirmwareString()
{
return(firmware_version);
}
void CorsairHydroController::SetBlink
(
std::vector<RGBColor> & colors,
unsigned char speed
)
{
SendColors(colors);
SendSpeed(speed);
SendApplyBlink();
}
void CorsairHydroController::SetFixed
(
std::vector<RGBColor> & colors
)
{
SendColors(colors);
/*-----------------------------------------------------*\
| Fixed mode seems to just be shift mode with the same |
| value for both colors |
\*-----------------------------------------------------*/
SendApplyShift();
}
void CorsairHydroController::SetPulse
(
std::vector<RGBColor> & colors,
unsigned char speed
)
{
SendColors(colors);
SendSpeed(speed);
SendApplyPulse();
}
void CorsairHydroController::SetShift
(
std::vector<RGBColor> & colors,
unsigned char speed
)
{
SendColors(colors);
SendSpeed(speed);
SendApplyShift();
}
/*-------------------------------------------------------------------------------------------------*\
| Private packet sending functions. |
\*-------------------------------------------------------------------------------------------------*/
void CorsairHydroController::SendApplyBlink()
{
unsigned char usb_buf[3];
int actual;
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Apply Blink packet |
\*-----------------------------------------------------*/
usb_buf[0] = 0x58;
usb_buf[1] = 0x01;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
libusb_bulk_transfer(dev, 0x01, usb_buf, 2, &actual, 1000);
libusb_bulk_transfer(dev, 0x81, usb_buf, 3, &actual, 1000);
}
void CorsairHydroController::SendApplyPulse()
{
unsigned char usb_buf[3];
int actual;
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Apply Pulse packet |
\*-----------------------------------------------------*/
usb_buf[0] = 0x52;
usb_buf[1] = 0x01;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
libusb_bulk_transfer(dev, 0x01, usb_buf, 2, &actual, 1000);
libusb_bulk_transfer(dev, 0x81, usb_buf, 3, &actual, 1000);
}
void CorsairHydroController::SendApplyShift()
{
unsigned char usb_buf[3];
int actual;
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Apply Shift packet |
\*-----------------------------------------------------*/
usb_buf[0] = 0x55;
usb_buf[1] = 0x01;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
libusb_bulk_transfer(dev, 0x01, usb_buf, 2, &actual, 1000);
libusb_bulk_transfer(dev, 0x81, usb_buf, 3, &actual, 1000);
}
void CorsairHydroController::SendFirmwareRequest()
{
unsigned char usb_buf[8];
int actual;
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Firmware Request packet |
\*-----------------------------------------------------*/
usb_buf[0] = 0xAA;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
libusb_bulk_transfer(dev, 0x01, usb_buf, 1, &actual, 1000);
libusb_bulk_transfer(dev, 0x81, usb_buf, 7, &actual, 1000);
firmware_version = std::to_string(usb_buf[3]) + "." + std::to_string(usb_buf[4]) + "." + std::to_string(usb_buf[5]) + "." + std::to_string(usb_buf[6]);
}
void CorsairHydroController::SendColors
(
std::vector<RGBColor> & colors
)
{
unsigned char usb_buf[23];
int actual;
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Send Colors packet |
\*-----------------------------------------------------*/
usb_buf[0] = 0x56;
usb_buf[1] = colors.size();
/*---------------------------------------------------------*\
| Fill in colors from vector |
\*---------------------------------------------------------*/
for(std::size_t color_idx = 0; color_idx < colors.size(); color_idx++)
{
usb_buf[(color_idx * 3) + 2] = RGBGetRValue(colors[color_idx]);
usb_buf[(color_idx * 3) + 3] = RGBGetGValue(colors[color_idx]);
usb_buf[(color_idx * 3) + 4] = RGBGetBValue(colors[color_idx]);
/*---------------------------------------------------------*\
| If the color vector only has one entry, duplicate it, as |
| the controller appears to require two colors in order to |
| update. |
\*---------------------------------------------------------*/
if((color_idx == 0) && colors.size() == 1)
{
usb_buf[1] = colors.size() + 1;
usb_buf[(color_idx * 3) + 5] = RGBGetRValue(colors[color_idx]);
usb_buf[(color_idx * 3) + 6] = RGBGetGValue(colors[color_idx]);
usb_buf[(color_idx * 3) + 7] = RGBGetBValue(colors[color_idx]);
}
}
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
libusb_bulk_transfer(dev, 0x01, usb_buf, 2 + (usb_buf[1] * 3), &actual, 1000);
libusb_bulk_transfer(dev, 0x81, usb_buf, 3, &actual, 1000);
}
void CorsairHydroController::SendInit()
{
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
libusb_control_transfer( dev, 0x40, 0x00, 0xffff, 0x0000, NULL, 0, 0 );
libusb_control_transfer( dev, 0x40, 0x02, 0x0002, 0x0000, NULL, 0, 0 );
}
void CorsairHydroController::SendSpeed
(
unsigned char speed
)
{
unsigned char usb_buf[3];
int actual;
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Send Speed packet |
\*-----------------------------------------------------*/
usb_buf[0] = 0x53;
usb_buf[1] = speed;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
libusb_bulk_transfer(dev, 0x01, usb_buf, 2, &actual, 1000);
libusb_bulk_transfer(dev, 0x81, usb_buf, 3, &actual, 1000);
}
@@ -1,86 +0,0 @@
/*---------------------------------------------------------*\
| Definitions for Corsair Hydro Series |
| |
| Adam Honse ([email protected]), 8/17/2020 |
\*---------------------------------------------------------*/
#include "RGBController.h"
#include <vector>
#include <libusb-1.0/libusb.h>
#pragma once
enum
{
CORSAIR_HYDRO_CMD_READ_PUMP_SPEED = 0x31,
CORSAIR_HYDRO_CMD_WRITE_PUMP_MODE = 0x32,
CORSAIR_HYDRO_CMD_READ_PUMP_MODE = 0x33,
CORSAIR_HYDRO_CMD_READ_FAN_SPEED = 0x41,
CORSAIR_HYDRO_CMD_READ_AIO_TEMP = 0xA9,
CORSAIR_HYDRO_CMD_READ_FIRMWARE = 0xAA,
};
enum
{
CORSAIR_HYDRO_PUMP_MODE_QUIET = 0x00,
CORSAIR_HYDRO_PUMP_MODE_BALANCED = 0x01,
CORSAIR_HYDRO_PUMP_MODE_PERFORMANCE = 0x02,
};
class CorsairHydroController
{
public:
CorsairHydroController(libusb_device_handle* dev_handle);
~CorsairHydroController();
unsigned char GetFanPercent(unsigned char fan_channel);
unsigned short GetFanRPM(unsigned char fan_channel);
std::string GetFirmwareString();
void SetBlink
(
std::vector<RGBColor> & colors,
unsigned char speed
);
void SetFixed
(
std::vector<RGBColor> & colors
);
void SetPulse
(
std::vector<RGBColor> & colors,
unsigned char speed
);
void SetShift
(
std::vector<RGBColor> & colors,
unsigned char speed
);
private:
libusb_device_handle* dev;
std::string firmware_version;
void SendApplyBlink();
void SendApplyPulse();
void SendApplyShift();
void SendColors
(
std::vector<RGBColor> & colors
);
void SendFirmwareRequest();
void SendInit();
void SendSpeed
(
unsigned char speed
);
};
@@ -1,74 +0,0 @@
#include "Detector.h"
#include "CorsairHydroController.h"
#include "RGBController.h"
#include "RGBController_CorsairHydro.h"
#include <vector>
#include <libusb-1.0/libusb.h>
/*-----------------------------------------------------*\
| Corsair vendor ID |
\*-----------------------------------------------------*/
#define CORSAIR_VID 0x1B1C
/*-----------------------------------------------------*\
| Keyboard Hydro Series product IDs |
\*-----------------------------------------------------*/
#define CORSAIR_H115I_PRO_RGB_PID 0x0C13
#define CORSAIR_H100I_PRO_RGB_PID 0x0C15
#define CORSAIR_H150I_PRO_RGB_PID 0x0C12
typedef struct
{
unsigned short usb_vid;
unsigned short usb_pid;
unsigned char usb_interface;
const char * name;
} corsair_hydro_device;
#define CORSAIR_NUM_DEVICES (sizeof(device_list) / sizeof(device_list[ 0 ]))
static const corsair_hydro_device device_list[] =
{
/*-----------------------------------------------------------------------------------------------------*\
| Coolers |
\*-----------------------------------------------------------------------------------------------------*/
{ CORSAIR_VID, CORSAIR_H100I_PRO_RGB_PID, 0, "Corsair H100i PRO RGB" },
{ CORSAIR_VID, CORSAIR_H115I_PRO_RGB_PID, 0, "Corsair H115i PRO RGB" },
{ CORSAIR_VID, CORSAIR_H150I_PRO_RGB_PID, 0, "Corsair H150i PRO RGB" },
};
/******************************************************************************************\
* *
* DetectCorsairHydroControllers *
* *
* Tests the USB address to see if a Corsair RGB Cooler controller exists there. *
* *
\******************************************************************************************/
void DetectCorsairHydroControllers(std::vector<RGBController*>& rgb_controllers)
{
libusb_context * ctx;
libusb_init(&ctx);
for(std::size_t device_idx = 0; device_idx < CORSAIR_NUM_DEVICES; device_idx++)
{
libusb_device_handle * dev = libusb_open_device_with_vid_pid(ctx, device_list[device_idx].usb_vid, device_list[device_idx].usb_pid);
//Look for Corsair RGB Peripheral
if(dev)
{
libusb_detach_kernel_driver(dev, 0);
libusb_claim_interface(dev, 0);
CorsairHydroController* controller = new CorsairHydroController(dev);//, device_list[device_idx].usb_endpoint);
RGBController_CorsairHydro* rgb_controller = new RGBController_CorsairHydro(controller);
rgb_controller->name = device_list[device_idx].name;
rgb_controllers.push_back(rgb_controller);
}
}
} /* DetectCorsairHydroControllers() */
REGISTER_DETECTOR("Corsair Hydro Series", DetectCorsairHydroControllers);
@@ -1,136 +0,0 @@
/*-----------------------------------------*\
| RGBController_CorsairHydro.cpp |
| |
| Generic RGB Interface for Corsair |
| Hydro Series |
| |
| Adam Honse (CalcProgrammer1) 8/18/2020 |
\*-----------------------------------------*/
#include "RGBController_CorsairHydro.h"
RGBController_CorsairHydro::RGBController_CorsairHydro(CorsairHydroController* corsair_ptr)
{
corsair = corsair_ptr;
description = "Corsair Hydro Series Device";
version = corsair->GetFirmwareString();
type = DEVICE_TYPE_COOLER;
mode Direct;
Direct.name = "Direct";
Direct.value = 0;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
mode Blinking;
Blinking.name = "Blinking";
Blinking.value = 1;
Blinking.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR;
Blinking.color_mode = MODE_COLORS_MODE_SPECIFIC;
Blinking.speed_min = 0x0F;
Blinking.speed_max = 0x05;
Blinking.speed = 0x0A;
Blinking.colors_min = 2;
Blinking.colors_max = 2;
Blinking.colors.resize(2);
modes.push_back(Blinking);
mode ColorShift;
ColorShift.name = "Color Shift";
ColorShift.value = 2;
ColorShift.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR;
ColorShift.color_mode = MODE_COLORS_MODE_SPECIFIC;
ColorShift.speed_min = 0x46;
ColorShift.speed_max = 0x0F;
ColorShift.speed = 0x28;
ColorShift.colors_min = 2;
ColorShift.colors_max = 2;
ColorShift.colors.resize(2);
modes.push_back(ColorShift);
mode Pulsing;
Pulsing.name = "Pulsing";
Pulsing.value = 3;
Pulsing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_MODE_SPECIFIC_COLOR;
Pulsing.color_mode = MODE_COLORS_MODE_SPECIFIC;
Pulsing.speed_min = 0x50;
Pulsing.speed_max = 0x1E;
Pulsing.speed = 0x37;
Pulsing.colors_min = 2;
Pulsing.colors_max = 2;
Pulsing.colors.resize(2);
modes.push_back(Pulsing);
SetupZones();
}
void RGBController_CorsairHydro::SetupZones()
{
zone new_zone;
new_zone.name = "Pump Zone";
new_zone.type = ZONE_TYPE_SINGLE;
new_zone.leds_min = 1;
new_zone.leds_max = 1;
new_zone.leds_count = 1;
new_zone.matrix_map = NULL;
zones.push_back(new_zone);
led new_led;
new_led.name = "Pump LED";
leds.push_back(new_led);
SetupColors();
}
void RGBController_CorsairHydro::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_CorsairHydro::DeviceUpdateLEDs()
{
DeviceUpdateMode();
}
void RGBController_CorsairHydro::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_CorsairHydro::UpdateSingleLED(int /*led*/)
{
DeviceUpdateLEDs();
}
void RGBController_CorsairHydro::SetCustomMode()
{
active_mode = 0;
}
void RGBController_CorsairHydro::DeviceUpdateMode()
{
switch(modes[active_mode].value)
{
case 0:
corsair->SetFixed(colors);
break;
case 1:
corsair->SetBlink(modes[active_mode].colors, modes[active_mode].speed);
break;
case 2:
corsair->SetShift(modes[active_mode].colors, modes[active_mode].speed);
break;
case 3:
corsair->SetPulse(modes[active_mode].colors, modes[active_mode].speed);
break;
}
}
@@ -1,32 +0,0 @@
/*-----------------------------------------*\
| RGBController_CorsairHydro.h |
| |
| Generic RGB Interface for Corsair |
| Hydro Series |
| |
| Adam Honse (CalcProgrammer1) 8/17/2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "CorsairHydroController.h"
class RGBController_CorsairHydro : public RGBController
{
public:
RGBController_CorsairHydro(CorsairHydroController* corsair_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
CorsairHydroController* corsair;
};
@@ -37,10 +37,9 @@ THREAD keepalive_thread(void *param)
THREADRETURN
}
CorsairLightingNodeController::CorsairLightingNodeController(hid_device* dev_handle, const char* path)
CorsairLightingNodeController::CorsairLightingNodeController(hid_device* dev_handle)
{
dev = dev_handle;
location = path;
dev = dev_handle;
SendFirmwareRequest();
@@ -66,7 +65,7 @@ void CorsairLightingNodeController::KeepaliveThread()
{
while(1)
{
if((std::chrono::steady_clock::now() - last_commit_time) > std::chrono::seconds(5))
if((clock() - last_commit_time) > 5000)
{
SendCommit();
}
@@ -79,11 +78,6 @@ std::string CorsairLightingNodeController::GetFirmwareString()
return(firmware_version);
}
std::string CorsairLightingNodeController::GetLocationString()
{
return(location);
}
void CorsairLightingNodeController::SetChannelEffect(unsigned char channel,
unsigned char num_leds,
unsigned char mode,
@@ -204,7 +198,7 @@ void CorsairLightingNodeController::SetChannelLEDs(unsigned char channel, RGBCol
void CorsairLightingNodeController::SendFirmwareRequest()
{
int actual;
unsigned char usb_buf[65];
unsigned char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -214,14 +208,13 @@ void CorsairLightingNodeController::SendFirmwareRequest()
/*-----------------------------------------------------*\
| Set up Firmware Version Request packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_LIGHTING_NODE_PACKET_ID_FIRMWARE;
usb_buf[0x00] = CORSAIR_LIGHTING_NODE_PACKET_ID_FIRMWARE;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
actual = hid_read(dev, usb_buf, 17);
hid_write(dev, usb_buf, 64);
actual = hid_read(dev, usb_buf, 16);
if(actual > 0)
{
@@ -238,7 +231,7 @@ void CorsairLightingNodeController::SendDirect
unsigned char* color_data
)
{
unsigned char usb_buf[65];
unsigned char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -248,28 +241,27 @@ void CorsairLightingNodeController::SendDirect
/*-----------------------------------------------------*\
| Set up Direct packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_LIGHTING_NODE_PACKET_ID_DIRECT;
usb_buf[0x02] = channel;
usb_buf[0x03] = start;
usb_buf[0x04] = count;
usb_buf[0x05] = color_channel;
usb_buf[0x00] = CORSAIR_LIGHTING_NODE_PACKET_ID_DIRECT;
usb_buf[0x01] = channel;
usb_buf[0x02] = start;
usb_buf[0x03] = count;
usb_buf[0x04] = color_channel;
/*-----------------------------------------------------*\
| Copy in color data bytes |
\*-----------------------------------------------------*/
memcpy(&usb_buf[0x06], color_data, count);
memcpy(&usb_buf[0x05], color_data, count);
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
hid_read(dev, usb_buf, 17);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 16);
}
void CorsairLightingNodeController::SendCommit()
{
unsigned char usb_buf[65];
unsigned char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -279,20 +271,19 @@ void CorsairLightingNodeController::SendCommit()
/*-----------------------------------------------------*\
| Update last commit time |
\*-----------------------------------------------------*/
last_commit_time = std::chrono::steady_clock::now();
last_commit_time = clock();
/*-----------------------------------------------------*\
| Set up Commit packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_LIGHTING_NODE_PACKET_ID_COMMIT;
usb_buf[0x02] = 0xFF;
usb_buf[0x00] = CORSAIR_LIGHTING_NODE_PACKET_ID_COMMIT;
usb_buf[0x01] = 0xFF;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
hid_read(dev, usb_buf, 17);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 16);
}
void CorsairLightingNodeController::SendBegin
@@ -300,7 +291,7 @@ void CorsairLightingNodeController::SendBegin
unsigned char channel
)
{
unsigned char usb_buf[65];
unsigned char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -310,15 +301,14 @@ void CorsairLightingNodeController::SendBegin
/*-----------------------------------------------------*\
| Set up Begin packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_LIGHTING_NODE_PACKET_ID_BEGIN;
usb_buf[0x02] = channel;
usb_buf[0x00] = CORSAIR_LIGHTING_NODE_PACKET_ID_BEGIN;
usb_buf[0x01] = channel;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
hid_read(dev, usb_buf, 17);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 16);
}
void CorsairLightingNodeController::SendEffectConfig
@@ -344,7 +334,7 @@ void CorsairLightingNodeController::SendEffectConfig
unsigned short temperature_2
)
{
unsigned char usb_buf[65];
unsigned char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -354,49 +344,48 @@ void CorsairLightingNodeController::SendEffectConfig
/*-----------------------------------------------------*\
| Set up Effect Config packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_LIGHTING_NODE_PACKET_ID_EFFECT_CONFIG;
usb_buf[0x02] = channel;
usb_buf[0x03] = count;
usb_buf[0x04] = led_type;
usb_buf[0x00] = CORSAIR_LIGHTING_NODE_PACKET_ID_EFFECT_CONFIG;
usb_buf[0x01] = channel;
usb_buf[0x02] = count;
usb_buf[0x03] = led_type;
/*-----------------------------------------------------*\
| Set up mode parameters |
\*-----------------------------------------------------*/
usb_buf[0x05] = mode;
usb_buf[0x06] = speed;
usb_buf[0x07] = direction;
usb_buf[0x08] = change_style;
usb_buf[0x09] = 0;
usb_buf[0x04] = mode;
usb_buf[0x05] = speed;
usb_buf[0x06] = direction;
usb_buf[0x07] = change_style;
usb_buf[0x08] = 0;
/*-----------------------------------------------------*\
| Set up mode colors |
\*-----------------------------------------------------*/
usb_buf[0x0A] = color_0_red;
usb_buf[0x0B] = color_0_green;
usb_buf[0x0C] = color_0_blue;
usb_buf[0x0D] = color_1_red;
usb_buf[0x0E] = color_1_green;
usb_buf[0x0F] = color_1_blue;
usb_buf[0x10] = color_2_red;
usb_buf[0x11] = color_2_green;
usb_buf[0x12] = color_2_blue;
usb_buf[0x09] = color_0_red;
usb_buf[0x0A] = color_0_green;
usb_buf[0x0B] = color_0_blue;
usb_buf[0x0C] = color_1_red;
usb_buf[0x0D] = color_1_green;
usb_buf[0x0E] = color_1_blue;
usb_buf[0x0F] = color_2_red;
usb_buf[0x10] = color_2_green;
usb_buf[0x11] = color_2_blue;
/*-----------------------------------------------------*\
| Set up temperatures |
\*-----------------------------------------------------*/
usb_buf[0x13] = (temperature_0 >> 8);
usb_buf[0x14] = (temperature_0 & 0xFF);
usb_buf[0x15] = (temperature_1 >> 8);
usb_buf[0x16] = (temperature_1 & 0xFF);
usb_buf[0x17] = (temperature_2 >> 8);
usb_buf[0x18] = (temperature_2 & 0xFF);
usb_buf[0x12] = (temperature_0 >> 8);
usb_buf[0x13] = (temperature_0 & 0xFF);
usb_buf[0x14] = (temperature_1 >> 8);
usb_buf[0x15] = (temperature_1 & 0xFF);
usb_buf[0x16] = (temperature_2 >> 8);
usb_buf[0x17] = (temperature_2 & 0xFF);
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
hid_read(dev, usb_buf, 17);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 16);
}
void CorsairLightingNodeController::SendTemperature()
@@ -409,7 +398,7 @@ void CorsairLightingNodeController::SendReset
unsigned char channel
)
{
unsigned char usb_buf[65];
unsigned char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -419,15 +408,14 @@ void CorsairLightingNodeController::SendReset
/*-----------------------------------------------------*\
| Set up Reset packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_LIGHTING_NODE_PACKET_ID_RESET;
usb_buf[0x02] = channel;
usb_buf[0x00] = CORSAIR_LIGHTING_NODE_PACKET_ID_RESET;
usb_buf[0x01] = channel;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
hid_read(dev, usb_buf, 17);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 16);
}
void CorsairLightingNodeController::SendPortState
@@ -436,7 +424,7 @@ void CorsairLightingNodeController::SendPortState
unsigned char state
)
{
unsigned char usb_buf[65];
unsigned char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -446,16 +434,15 @@ void CorsairLightingNodeController::SendPortState
/*-----------------------------------------------------*\
| Set up Port State packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_LIGHTING_NODE_PACKET_ID_PORT_STATE;
usb_buf[0x02] = channel;
usb_buf[0x03] = state;
usb_buf[0x00] = CORSAIR_LIGHTING_NODE_PACKET_ID_PORT_STATE;
usb_buf[0x01] = channel;
usb_buf[0x02] = state;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, usb_buf, 65);
hid_read(dev, usb_buf, 17);
hid_write(dev, usb_buf, 64);
hid_read(dev, usb_buf, 16);
}
void CorsairLightingNodeController::SendBrightness()
@@ -5,7 +5,6 @@
\*---------------------------------------------------------*/
#include "RGBController.h"
#include <chrono>
#include <vector>
#include <hidapi/hidapi.h>
@@ -79,11 +78,10 @@ enum
class CorsairLightingNodeController
{
public:
CorsairLightingNodeController(hid_device* dev_handle, const char* path);
CorsairLightingNodeController(hid_device* dev_handle);
~CorsairLightingNodeController();
std::string GetFirmwareString();
std::string GetLocationString();
unsigned int GetStripsOnChannel(unsigned int channel);
@@ -111,8 +109,7 @@ public:
private:
hid_device* dev;
std::string firmware_version;
std::string location;
std::chrono::time_point<std::chrono::steady_clock> last_commit_time;
clock_t last_commit_time;
void SendFirmwareRequest();
@@ -1,4 +1,3 @@
#include "Detector.h"
#include "CorsairLightingNodeController.h"
#include "RGBController.h"
#include "RGBController_CorsairLightingNode.h"
@@ -64,7 +63,7 @@ void DetectCorsairLightingNodeControllers(std::vector<RGBController*> &rgb_contr
if( dev )
{
CorsairLightingNodeController* controller = new CorsairLightingNodeController(dev, info->path);
CorsairLightingNodeController* controller = new CorsairLightingNodeController(dev);
RGBController_CorsairLightingNode* rgb_controller = new RGBController_CorsairLightingNode(controller);
@@ -78,5 +77,3 @@ void DetectCorsairLightingNodeControllers(std::vector<RGBController*> &rgb_contr
}
}
} /* DetectCorsairLightingNodeControllers() */
REGISTER_DETECTOR("Corsair Lighting Node", DetectCorsairLightingNodeControllers);
@@ -22,39 +22,29 @@ static unsigned int keys[] = {0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x
116, 117, 120, 121, 122, 123, 124, 126, 127, 128, 129, 132, 133, 134, 135,
136, 137, 139, 140, 141};
static unsigned int keys_k95_plat[] = {0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0C, 0x0D, 0x0E, 0x0F, 0x11, 0x12,
0x14, 0x15, 0x18, 0x19, 0x1A, 0x1B, 0x1C, 0x1D, 0x1E, 0x1F, 0x20, 0x21, 0x24, 0x25, 0x26,
0x27, 0x28, 0x2A, 0x2B, 0x2C, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39,
0x3C, 0x3D, 0x3E, 0x3F, 0x40, 0x42, 0x43, 0x44, 0x45, 0x48, 73, 74, 75, 76, 78,
79, 80, 81, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 96, 97,
98, 99, 100, 101, 102, 103, 104, 105, 108, 109, 110, 111, 112, 113, 115,
116, 117, 120, 121, 122, 123, 124, 126, 127, 128, 129, 132, 133, 134, 135,
136, 137, 139, 140, 141,
0x10, 114, 0x0a, 0x16, 0x22, 0x2e, 0x3a, 0x46,
144, 145, 146, 158, 160, 147, 148, 149, 150, 151, 152, 153,
154, 155, 159, 162, 161, 156, 157};
static unsigned int keys_k95[] = {0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0C, 0x0D, 0x0E, 0x0F, 0x11, 0x12,
0x14, 0x15, 0x18, 0x19, 0x1A, 0x1B, 0x1C, 0x1D, 0x1E, 0x1F, 0x20, 0x21, 0x24, 0x25, 0x26,
0x27, 0x28, 0x2A, 0x2B, 0x2C, 0x30, 0x31, 0x32, 0x33, 0x34, 0x35, 0x36, 0x37, 0x38, 0x39,
0x3C, 0x3D, 0x3E, 0x3F, 0x40, 0x42, 0x43, 0x44, 0x45, 0x48, 73, 74, 75, 76, 78,
79, 80, 81, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 96, 97,
98, 99, 100, 101, 102, 103, 104, 105, 108, 109, 110, 111, 112, 113, 115,
116, 117, 120, 121, 122, 123, 124, 126, 127, 128, 129, 132, 133, 134, 135,
136, 137, 139, 140, 141,
0x10, 114, 0x0a, 0x16, 0x22, 0x2e, 0x3a, 0x46, 0x52, 0x5e, 0x6a, 0x76, 0x3b, 0x47, 0x53,
0x5f, 0x6b, 0x77, 0x83, 0x8f, 0x0b, 0x17, 0x23, 0x2f};
static unsigned int st100[] = { 0x00, 0x01, 0x02, 0x03, 0x05, 0x06, 0x07, 0x08, 0x04 };
CorsairPeripheralController::CorsairPeripheralController(hid_device* dev_handle, const char* path)
static void send_usb_msg(hid_device* dev, char * data_pkt)
{
dev = dev_handle;
location = path;
char usb_pkt[65];
usb_pkt[0] = 0x00;
for(int i = 1; i < 65; i++)
{
usb_pkt[i] = data_pkt[i-1];
}
int bytes = hid_send_feature_report(dev, (unsigned char *)usb_pkt, 65);
bytes++;
std::this_thread::sleep_for(1ms);
}
CorsairPeripheralController::CorsairPeripheralController(hid_device* dev_handle)
{
dev = dev_handle;
ReadFirmwareInfo();
SpecialFunctionControl();
LightingControl();
}
@@ -68,21 +58,6 @@ device_type CorsairPeripheralController::GetDeviceType()
return type;
}
std::string CorsairPeripheralController::GetDeviceLocation()
{
return(location);
}
int CorsairPeripheralController::GetPhysicalLayout()
{
return physical_layout;
}
int CorsairPeripheralController::GetLogicalLayout()
{
return logical_layout;
}
std::string CorsairPeripheralController::GetFirmwareString()
{
return firmware_version;
@@ -128,9 +103,9 @@ void CorsairPeripheralController::SetLEDs(std::vector<RGBColor>colors)
void CorsairPeripheralController::SetLEDsKeyboardFull(std::vector<RGBColor> colors)
{
unsigned char red_val[168];
unsigned char grn_val[168];
unsigned char blu_val[168];
unsigned char red_val[144];
unsigned char grn_val[144];
unsigned char blu_val[144];
/*-----------------------------------------------------*\
| Zero out buffers |
@@ -145,24 +120,9 @@ void CorsairPeripheralController::SetLEDsKeyboardFull(std::vector<RGBColor> colo
for(std::size_t color_idx = 0; color_idx < colors.size(); color_idx++)
{
RGBColor color = colors[color_idx];
if (logical_layout == CORSAIR_TYPE_K95_PLAT)
{
red_val[keys_k95_plat[color_idx]] = RGBGetRValue(color);
grn_val[keys_k95_plat[color_idx]] = RGBGetGValue(color);
blu_val[keys_k95_plat[color_idx]] = RGBGetBValue(color);
}
else if (logical_layout == CORSAIR_TYPE_K95)
{
red_val[keys_k95[color_idx]] = RGBGetRValue(color);
grn_val[keys_k95[color_idx]] = RGBGetGValue(color);
blu_val[keys_k95[color_idx]] = RGBGetBValue(color);
}
else
{
red_val[keys[color_idx]] = RGBGetRValue(color);
grn_val[keys[color_idx]] = RGBGetGValue(color);
blu_val[keys[color_idx]] = RGBGetBValue(color);
}
red_val[keys[color_idx]] = RGBGetRValue(color);
grn_val[keys[color_idx]] = RGBGetGValue(color);
blu_val[keys[color_idx]] = RGBGetBValue(color);
}
/*-----------------------------------------------------*\
@@ -170,7 +130,7 @@ void CorsairPeripheralController::SetLEDsKeyboardFull(std::vector<RGBColor> colo
\*-----------------------------------------------------*/
StreamPacket(1, 60, &red_val[0]);
StreamPacket(2, 60, &red_val[60]);
StreamPacket(3, 48, &red_val[120]);
StreamPacket(3, 24, &red_val[120]);
SubmitKeyboardFullColors(1, 3, 1);
/*-----------------------------------------------------*\
@@ -178,7 +138,7 @@ void CorsairPeripheralController::SetLEDsKeyboardFull(std::vector<RGBColor> colo
\*-----------------------------------------------------*/
StreamPacket(1, 60, &grn_val[0]);
StreamPacket(2, 60, &grn_val[60]);
StreamPacket(3, 48, &grn_val[120]);
StreamPacket(3, 24, &grn_val[120]);
SubmitKeyboardFullColors(2, 3, 1);
/*-----------------------------------------------------*\
@@ -186,7 +146,7 @@ void CorsairPeripheralController::SetLEDsKeyboardFull(std::vector<RGBColor> colo
\*-----------------------------------------------------*/
StreamPacket(1, 60, &blu_val[0]);
StreamPacket(2, 60, &blu_val[60]);
StreamPacket(3, 48, &blu_val[120]);
StreamPacket(3, 24, &blu_val[120]);
SubmitKeyboardFullColors(3, 3, 2);
}
@@ -273,7 +233,7 @@ void CorsairPeripheralController::SetLEDsKeyboardLimited(std::vector<RGBColor> c
void CorsairPeripheralController::LightingControl()
{
char usb_buf[65];
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -283,10 +243,9 @@ void CorsairPeripheralController::LightingControl()
/*-----------------------------------------------------*\
| Set up Lighting Control packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_WRITE;
usb_buf[0x02] = CORSAIR_PROPERTY_LIGHTING_CONTROL;
usb_buf[0x03] = CORSAIR_LIGHTING_CONTROL_SOFTWARE;
usb_buf[0x00] = CORSAIR_COMMAND_WRITE;
usb_buf[0x01] = CORSAIR_PROPERTY_LIGHTING_CONTROL;
usb_buf[0x02] = CORSAIR_LIGHTING_CONTROL_SOFTWARE;
/*-----------------------------------------------------*\
| Lighting control byte needs to be 3 for keyboards and |
@@ -296,31 +255,31 @@ void CorsairPeripheralController::LightingControl()
{
default:
case DEVICE_TYPE_KEYBOARD:
usb_buf[0x05] = 0x03;
usb_buf[0x04] = 0x03;
break;
case DEVICE_TYPE_MOUSE:
usb_buf[0x05] = 0x01;
usb_buf[0x04] = 0x01;
break;
case DEVICE_TYPE_MOUSEMAT:
usb_buf[0x05] = 0x04;
usb_buf[0x04] = 0x04;
break;
case DEVICE_TYPE_HEADSET_STAND:
usb_buf[0x05] = 0x03;
usb_buf[0x04] = 0x03;
break;
}
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
send_usb_msg(dev, usb_buf);
}
void CorsairPeripheralController::SpecialFunctionControl()
{
char usb_buf[65];
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -330,23 +289,20 @@ void CorsairPeripheralController::SpecialFunctionControl()
/*-----------------------------------------------------*\
| Set up Lighting Control packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_WRITE;
usb_buf[0x02] = CORSAIR_PROPERTY_SPECIAL_FUNCTION;
usb_buf[0x03] = CORSAIR_LIGHTING_CONTROL_SOFTWARE;
usb_buf[0x00] = CORSAIR_COMMAND_WRITE;
usb_buf[0x01] = CORSAIR_PROPERTY_SPECIAL_FUNCTION;
usb_buf[0x02] = CORSAIR_LIGHTING_CONTROL_SOFTWARE;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
send_usb_msg(dev, usb_buf);
}
void CorsairPeripheralController::ReadFirmwareInfo()
{
int actual;
char usb_buf[65];
char offset = 0;
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -356,17 +312,16 @@ void CorsairPeripheralController::ReadFirmwareInfo()
/*-----------------------------------------------------*\
| Set up Read Firmware Info packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_READ;
usb_buf[0x02] = CORSAIR_PROPERTY_FIRMWARE_INFO;
usb_buf[0x00] = CORSAIR_COMMAND_READ;
usb_buf[0x01] = CORSAIR_PROPERTY_FIRMWARE_INFO;
/*-----------------------------------------------------*\
| Send packet and try reading it using an HID read |
| If that fails, repeat the send and read the reply as |
| a feature report. |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char*)usb_buf, 65);
actual = hid_read_timeout(dev, (unsigned char*)usb_buf, 65, 1000);
hid_write(dev, (unsigned char*)usb_buf, 64);
actual = hid_read_timeout(dev, (unsigned char*)usb_buf, 64, 1000);
if(actual == 0)
{
@@ -378,13 +333,11 @@ void CorsairPeripheralController::ReadFirmwareInfo()
/*-------------------------------------------------*\
| Set up Read Firmware Info packet |
\*-------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_READ;
usb_buf[0x02] = CORSAIR_PROPERTY_FIRMWARE_INFO;
usb_buf[0x00] = CORSAIR_COMMAND_READ;
usb_buf[0x01] = CORSAIR_PROPERTY_FIRMWARE_INFO;
hid_send_feature_report(dev, (unsigned char*)usb_buf, 65);
actual = hid_get_feature_report(dev, (unsigned char*)usb_buf, 65);
offset = 1;
hid_write(dev, (unsigned char*)usb_buf, 64);
actual = hid_get_feature_report(dev, (unsigned char*)usb_buf, 64);
}
/*-----------------------------------------------------*\
@@ -393,32 +346,14 @@ void CorsairPeripheralController::ReadFirmwareInfo()
| 0xC1 Device is a mouse |
| 0xC2 Device is a mousepad or headset stand |
\*-----------------------------------------------------*/
switch((unsigned char)usb_buf[0x14 + offset])
switch((unsigned char)usb_buf[0x14])
{
case 0xC0:
{
unsigned short pid = (unsigned short)(usb_buf[0x0F] << 8) + (unsigned char)(usb_buf[0x0E]);
switch(pid)
{
case 0x2D1B:
logical_layout = CORSAIR_TYPE_K95_PLAT;
break;
case 0x1B11:
logical_layout = CORSAIR_TYPE_K95;
break;
default:
logical_layout = CORSAIR_TYPE_NORMAL;
}
}
type = DEVICE_TYPE_KEYBOARD;
break;
case 0xC1:
type = DEVICE_TYPE_MOUSE;
SpecialFunctionControl();
break;
case 0xC2:
@@ -429,12 +364,10 @@ void CorsairPeripheralController::ReadFirmwareInfo()
{
case 0x0A34:
type = DEVICE_TYPE_HEADSET_STAND;
SpecialFunctionControl();
break;
default:
type = DEVICE_TYPE_MOUSEMAT;
SpecialFunctionControl();
break;
}
}
@@ -450,22 +383,7 @@ void CorsairPeripheralController::ReadFirmwareInfo()
\*-----------------------------------------------------*/
if(type != DEVICE_TYPE_UNKNOWN)
{
firmware_version = std::to_string(usb_buf[0x09 + offset]) + "." + std::to_string(usb_buf[0x08 + offset]);
}
/*-----------------------------------------------------*\
| Get the correct Keyboard Layout |
\*-----------------------------------------------------*/
switch((unsigned char)usb_buf[0x17 + offset])
{
case CORSAIR_LAYOUT_ANSI:
physical_layout = CORSAIR_LAYOUT_ANSI;
break;
case CORSAIR_LAYOUT_ISO:
physical_layout = CORSAIR_LAYOUT_ISO;
break;
default:
physical_layout = CORSAIR_LAYOUT_ANSI;
firmware_version = std::to_string(usb_buf[0x09]) + "." + std::to_string(usb_buf[0x08]);
}
}
@@ -476,7 +394,7 @@ void CorsairPeripheralController::StreamPacket
unsigned char* data_ptr
)
{
char usb_buf[65];
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -486,20 +404,19 @@ void CorsairPeripheralController::StreamPacket
/*-----------------------------------------------------*\
| Set up Stream packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_STREAM;
usb_buf[0x02] = packet_id;
usb_buf[0x03] = data_sz;
usb_buf[0x00] = CORSAIR_COMMAND_STREAM;
usb_buf[0x01] = packet_id;
usb_buf[0x02] = data_sz;
/*-----------------------------------------------------*\
| Copy in data bytes |
\*-----------------------------------------------------*/
memcpy(&usb_buf[0x05], data_ptr, data_sz);
memcpy(&usb_buf[0x04], data_ptr, data_sz);
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
hid_write(dev, (unsigned char *)usb_buf, 64);
}
void CorsairPeripheralController::SubmitKeyboardFullColors
@@ -509,7 +426,7 @@ void CorsairPeripheralController::SubmitKeyboardFullColors
unsigned char finish_val
)
{
char usb_buf[65];
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -519,17 +436,16 @@ void CorsairPeripheralController::SubmitKeyboardFullColors
/*-----------------------------------------------------*\
| Set up Submit Keyboard 24-Bit Colors packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_WRITE;
usb_buf[0x02] = CORSAIR_PROPERTY_SUBMIT_KEYBOARD_COLOR_24;
usb_buf[0x03] = color_channel;
usb_buf[0x04] = packet_count;
usb_buf[0x05] = finish_val;
usb_buf[0x00] = CORSAIR_COMMAND_WRITE;
usb_buf[0x01] = CORSAIR_PROPERTY_SUBMIT_KEYBOARD_COLOR_24;
usb_buf[0x02] = color_channel;
usb_buf[0x03] = packet_count;
usb_buf[0x04] = finish_val;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
hid_write(dev, (unsigned char *)usb_buf, 64);
}
void CorsairPeripheralController::SubmitKeyboardLimitedColors
@@ -537,7 +453,7 @@ void CorsairPeripheralController::SubmitKeyboardLimitedColors
unsigned char byte_count
)
{
char usb_buf[65];
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -547,15 +463,14 @@ void CorsairPeripheralController::SubmitKeyboardLimitedColors
/*-----------------------------------------------------*\
| Set up Submit Keyboard 9-Bit Colors packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_WRITE;
usb_buf[0x02] = CORSAIR_PROPERTY_SUBMIT_KEYBOARD_COLOR_9;
usb_buf[0x05] = byte_count;
usb_buf[0x00] = CORSAIR_COMMAND_WRITE;
usb_buf[0x01] = CORSAIR_PROPERTY_SUBMIT_KEYBOARD_COLOR_9;
usb_buf[0x04] = byte_count;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
hid_write(dev, (unsigned char *)usb_buf, 64);
}
void CorsairPeripheralController::SubmitMouseColors
@@ -564,7 +479,7 @@ void CorsairPeripheralController::SubmitMouseColors
RGBColor * color_data
)
{
char usb_buf[65];
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -574,27 +489,26 @@ void CorsairPeripheralController::SubmitMouseColors
/*-----------------------------------------------------*\
| Set up Submit Mouse Colors packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_WRITE;
usb_buf[0x02] = CORSAIR_PROPERTY_SUBMIT_MOUSE_COLOR;
usb_buf[0x03] = num_zones;
usb_buf[0x04] = 0x00;
usb_buf[0x00] = CORSAIR_COMMAND_WRITE;
usb_buf[0x01] = CORSAIR_PROPERTY_SUBMIT_MOUSE_COLOR;
usb_buf[0x02] = num_zones;
usb_buf[0x03] = 0x00;
/*-----------------------------------------------------*\
| Copy in colors in <ZONE> <RED> <GREEN> <BLUE> order |
\*-----------------------------------------------------*/
for(unsigned int zone_idx = 0; zone_idx < num_zones; zone_idx++)
{
usb_buf[(zone_idx * 4) + 5] = zone_idx;
usb_buf[(zone_idx * 4) + 6] = RGBGetRValue(color_data[zone_idx]);
usb_buf[(zone_idx * 4) + 7] = RGBGetGValue(color_data[zone_idx]);
usb_buf[(zone_idx * 4) + 8] = RGBGetBValue(color_data[zone_idx]);
usb_buf[(zone_idx * 4) + 4] = zone_idx;
usb_buf[(zone_idx * 4) + 5] = RGBGetRValue(color_data[zone_idx]);
usb_buf[(zone_idx * 4) + 6] = RGBGetGValue(color_data[zone_idx]);
usb_buf[(zone_idx * 4) + 7] = RGBGetBValue(color_data[zone_idx]);
}
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
hid_write(dev, (unsigned char *)usb_buf, 64);
}
void CorsairPeripheralController::SubmitMousematColors
@@ -603,7 +517,7 @@ void CorsairPeripheralController::SubmitMousematColors
RGBColor * color_data
)
{
char usb_buf[65];
char usb_buf[64];
/*-----------------------------------------------------*\
| Zero out buffer |
@@ -613,25 +527,24 @@ void CorsairPeripheralController::SubmitMousematColors
/*-----------------------------------------------------*\
| Set up Submit Mouse Colors packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = CORSAIR_COMMAND_WRITE;
usb_buf[0x02] = CORSAIR_PROPERTY_SUBMIT_MOUSE_COLOR;
usb_buf[0x03] = num_zones;
usb_buf[0x04] = 0x00;
usb_buf[0x00] = CORSAIR_COMMAND_WRITE;
usb_buf[0x01] = CORSAIR_PROPERTY_SUBMIT_MOUSE_COLOR;
usb_buf[0x02] = num_zones;
usb_buf[0x03] = 0x00;
/*-----------------------------------------------------*\
| Copy in colors in <RED> <GREEN> <BLUE> order |
\*-----------------------------------------------------*/
for(unsigned int zone_idx = 0; zone_idx < num_zones; zone_idx++)
{
usb_buf[(zone_idx * 3) + 5] = RGBGetRValue(color_data[zone_idx]);
usb_buf[(zone_idx * 3) + 6] = RGBGetGValue(color_data[zone_idx]);
usb_buf[(zone_idx * 3) + 7] = RGBGetBValue(color_data[zone_idx]);
usb_buf[(zone_idx * 3) + 4] = RGBGetRValue(color_data[zone_idx]);
usb_buf[(zone_idx * 3) + 5] = RGBGetGValue(color_data[zone_idx]);
usb_buf[(zone_idx * 3) + 6] = RGBGetBValue(color_data[zone_idx]);
}
/*-----------------------------------------------------*\
| Send packet using feature reports, as headset stand |
| seems to not update completely using HID writes |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
send_usb_msg(dev, usb_buf);
}
@@ -47,32 +47,13 @@ enum
CORSAIR_COLOR_CHANNEL_BLUE = 0x03
};
enum
{
CORSAIR_LAYOUT_ANSI = 0x00,
CORSAIR_LAYOUT_ISO = 0x01,
CORSAIR_LAYOUT_ABNT = 0x02,
CORSAIR_LAYOUT_JIS = 0x03,
CORSAIR_LAYOUT_DUBEOLSIK = 0x04
};
enum
{
CORSAIR_TYPE_NORMAL = 0,
CORSAIR_TYPE_K95_PLAT = 1,
CORSAIR_TYPE_K95 = 2
};
class CorsairPeripheralController
{
public:
CorsairPeripheralController(hid_device* dev_handle, const char* path);
CorsairPeripheralController(hid_device* dev_handle);
~CorsairPeripheralController();
int GetLogicalLayout();
int GetPhysicalLayout();
device_type GetDeviceType();
std::string GetDeviceLocation();
std::string GetFirmwareString();
void SetLEDs(std::vector<RGBColor> colors);
@@ -85,10 +66,7 @@ private:
hid_device* dev;
std::string firmware_version;
std::string location;
device_type type;
int physical_layout; //ANSI, ISO, etc.
int logical_layout; //Normal, K95 or K95 Platinum
void LightingControl();
void SpecialFunctionControl();
@@ -1,4 +1,3 @@
#include "Detector.h"
#include "CorsairPeripheralController.h"
#include "RGBController.h"
#include "RGBController_CorsairPeripheral.h"
@@ -40,13 +39,8 @@
| Mouse product IDs |
| List taken from ckb-next |
\*-----------------------------------------------------*/
#define CORSAIR_GLAIVE_RGB_PRO_PID 0x1B74
#define CORSAIR_HARPOON_RGB_PID 0x1B3C
#define CORSAIR_HARPOON_RGB_PRO_PID 0x1B75
#define CORSAIR_M65_PRO_PID 0x1B2E
#define CORSAIR_M65_RGB_ELITE_PID 0x1B5A
#define CORSAIR_SCIMITAR_PRO_RGB_PID 0x1B3E
#define CORSAIR_SABRE_RGB_PID 0x1B2F
/*-----------------------------------------------------*\
| Mousepad product IDs |
@@ -93,13 +87,8 @@ static const corsair_node_device device_list[] =
/*-----------------------------------------------------------------------------------------------------*\
| Mice |
\*-----------------------------------------------------------------------------------------------------*/
{ CORSAIR_VID, CORSAIR_GLAIVE_RGB_PRO_PID, 1, "Corsair Glaive RGB PRO" },
{ CORSAIR_VID, CORSAIR_HARPOON_RGB_PID, 1, "Corsair Harpoon RGB" },
{ CORSAIR_VID, CORSAIR_HARPOON_RGB_PRO_PID, 1, "Corsair Harpoon RGB PRO" },
{ CORSAIR_VID, CORSAIR_M65_PRO_PID, 1, "Corsair M65 PRO" },
{ CORSAIR_VID, CORSAIR_M65_RGB_ELITE_PID, 1, "Corsair M65 RGB Elite" },
{ CORSAIR_VID, CORSAIR_SCIMITAR_PRO_RGB_PID, 1, "Corsair Scimitar PRO RGB" },
{ CORSAIR_VID, CORSAIR_SABRE_RGB_PID, 1, "Corsair Sabre RGB" },
/*-----------------------------------------------------------------------------------------------------*\
| Mousemats |
\*-----------------------------------------------------------------------------------------------------*/
@@ -135,33 +124,30 @@ void DetectCorsairPeripheralControllers(std::vector<RGBController*>& rgb_control
while(info)
{
if((info->vendor_id == device_list[device_idx].usb_vid)
#ifdef USE_HID_USAGE
&&(info->product_id == device_list[device_idx].usb_pid)
&&(info->usage_page == 0xFFC2))
#else
&&(info->product_id == device_list[device_idx].usb_pid)
&&(info->interface_number == device_list[device_idx].usb_interface))
#endif
{
dev = hid_open_path(info->path);
break;
}
else
{
info = info->next;
}
}
if( dev )
{
CorsairPeripheralController* controller = new CorsairPeripheralController(dev, info->path);
if( dev )
{
CorsairPeripheralController* controller = new CorsairPeripheralController(dev);
if(controller->GetDeviceType() != DEVICE_TYPE_UNKNOWN)
{
RGBController_CorsairPeripheral* rgb_controller = new RGBController_CorsairPeripheral(controller);
if(controller->GetDeviceType() != DEVICE_TYPE_UNKNOWN)
{
RGBController_CorsairPeripheral* rgb_controller = new RGBController_CorsairPeripheral(controller);
rgb_controller->name = device_list[device_idx].name;
rgb_controllers.push_back(rgb_controller);
}
}
rgb_controller->name = device_list[device_idx].name;
rgb_controllers.push_back(rgb_controller);
}
info = info->next;
}
}
} /* DetectCorsairPeripheralControllers() */
REGISTER_DETECTOR("Corsair Peripheral", DetectCorsairPeripheralControllers);
}
@@ -1,806 +0,0 @@
/*-----------------------------------------*\
| RGBController_CorsairPeripheral.cpp |
| |
| Generic RGB Interface for Corsair RGB |
| keyboard, mouse, and mousemat devices |
| |
| Adam Honse (CalcProgrammer1) 1/9/2020 |
\*-----------------------------------------*/
#include "RGBController_CorsairPeripheral.h"
//0xFFFFFFFF indicates an unused entry in matrix
#define NA 0xFFFFFFFF
static unsigned int matrix_map[6][23] =
{ { 0, NA, 10, 18, 28, 36, NA, 46, 55, 64, 74, NA, 84, 93, 102, 6, 15, 24, 33, 26, 35, 44, 53 },
{ 1, 11, 19, 29, 37, 47, 56, 65, 75, 85, 94, NA, 103, 7, 25, NA, 42, 51, 60, 62, 72, 82, 91 },
{ 2, NA, 12, 20, 30, 38, NA, 48, 57, 66, 76, 86, 95, 104, 70, 80, 34, 43, 52, 9, 17, 27, 100 },
{ 3, NA, 13, 21, 31, 39, NA, 49, 58, 67, 77, 87, 96, 105, 98, 112, NA, NA, NA, 45, 54, 63, NA },
{ 4, 111, 22, 32, 40, 50, NA, 59, NA, 68, 78, 88, 97, 106, 61, NA, NA, 81, NA, 73, 83, 92, 109 },
{ 5, 14, 23, NA, NA, NA, NA, 41, NA, NA, NA, NA, 69, 79, 89, 71, 90, 99, 108, 101, NA, 110, NA } };
static unsigned int matrix_map_k95_platinum[7][24] =
{ { NA, NA, NA, NA, 107, 8, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, 16, NA, NA, NA,},
{ 113, 0, NA, 10, 18, 28, 36, NA, 46, 55, 64, 74, NA, 84, 93, 102, 6, 15, 24, 33, 26, 35, 44, 53 },
{ 114, 1, 11, 19, 29, 37, 47, 56, 65, 75, 85, 94, NA, 103, 7, 25, NA, 42, 51, 60, 62, 72, 82, 91 },
{ 115, 2, NA, 12, 20, 30, 38, NA, 48, 57, 66, 76, 86, 95, 104, 70, 80, 34, 43, 52, 9, 17, 27, 100 },
{ 116, 3, NA, 13, 21, 31, 39, NA, 49, 58, 67, 77, 87, 96, 105, 98, 112, NA, NA, NA, 45, 54, 63, NA },
{ 117, 4, 111, 22, 32, 40, 50, NA, 59, NA, 68, 78, 88, 97, 106, 61, NA, NA, 81, NA, 73, 83, 92, 109 },
{ 118, 5, 14, 23, NA, NA, NA, NA, 41, NA, NA, NA, NA, 69, 79, 89, 71, 90, 99, 108, 101, NA, 110, NA } };
static unsigned int matrix_map_k95[7][26] =
{ { NA, NA, NA, 131, 132, 133, 134, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, 107, 8, NA, NA, 16, NA, NA,},
{ 113, 114, 115, 0, NA, 10, 18, 28, 36, NA, 46, 55, 64, 74, NA, 84, 93, 102, 6, 15, 24, 33, 26, 35, 44, 53 },
{ 116, 117, 118, 1, 11, 19, 29, 37, 47, 56, 65, 75, 85, 94, NA, 103, 7, 25, NA, 42, 51, 60, 62, 72, 82, 91 },
{ 119, 120, 121, 2, NA, 12, 20, 30, 38, NA, 48, 57, 66, 76, 86, 95, 104, 70, 80, 34, 43, 52, 9, 17, 27, 100 },
{ 122, 123, 124, 3, NA, 13, 21, 31, 39, NA, 49, 58, 67, 77, 87, 96, 105, 98, 112, NA, NA, NA, 45, 54, 63, NA },
{ 125, 126, 127, 4, 111, 22, 32, 40, 50, NA, 59, NA, 68, 78, 88, 97, 106, 61, NA, NA, 81, NA, 73, 83, 92, 109 },
{ 128, 129, 130, 5, 14, 23, NA, NA, NA, NA, 41, NA, NA, NA, NA, 69, 79, 89, 71, 90, 99, 108, 101, NA, 110, NA } };
/*---------------------------------------------------------*\
| Normal Corsair Layout |
\*---------------------------------------------------------*/
static const char* zone_names[] =
{
"Keyboard",
};
static const unsigned int zone_sizes[] =
{
113
};
static const zone_type zone_types[] =
{
ZONE_TYPE_MATRIX,
};
/*---------------------------------------------------------*\
| K95 Platinum |
\*---------------------------------------------------------*/
static const char* zone_names_k95_platinum[] =
{
"Keyboard",
"Light Bar"
};
static const unsigned int zone_sizes_k95_platinum[] =
{
119,
19
};
static const zone_type zone_types_k95_platinum[] =
{
ZONE_TYPE_MATRIX,
ZONE_TYPE_LINEAR
};
/*---------------------------------------------------------*\
| K95 non-Platinum |
\*---------------------------------------------------------*/
static const char* zone_names_k95[] =
{
"Keyboard",
};
static const unsigned int zone_sizes_k95[] =
{
135
};
static const zone_type zone_types_k95[] =
{
ZONE_TYPE_MATRIX
};
static const char* led_names[] =
{
"Key: Escape", //0
"Key: `", //1
"Key: Tab", //2
"Key: Caps Lock", //3
"Key: Left Shift", //4
"Key: Left Control", //5
"Key: F12", //6
"Key: =", //7
"Key: Lock", //8
"Key: Number Pad 7", //9
"Key: F1", //12
"Key: 1", //13
"Key: Q", //14
"Key: A", //15
"Key: Left Windows", //17
"Key: Print Screen", //18
"Key: Media Mute", //20
"Key: Number Pad 8", //21
"Key: F2", //24
"Key: 2", //25
"Key: W", //26
"Key: S", //27
"Key: Z", //28
"Key: Left Alt", //29
"Key: Scroll Lock", //30
"Key: Backspace", //31
"Key: Media Stop", //32
"Key: Number Pad 9", //33
"Key: F3", //36
"Key: 3", //37
"Key: E", //38
"Key: D", //39
"Key: X", //40
"Key: Pause/Break", //42
"Key: Delete", //43
"Key: Media Previous", //44
"Key: F4", //48
"Key: 4", //49
"Key: R", //50
"Key: F", //51
"Key: C", //52
"Key: Space", //53
"Key: Insert", //54
"Key: End", //55
"Key: Media Play/Pause",//56
"Key: Number Pad 4", //57
"Key: F5", //60
"Key: 5", //61
"Key: T", //62
"Key: G", //63
"Key: V", //64
"Key: Home", //66
"Key: Page Down", //67
"Key: Media Next", //68
"Key: Number Pad 5", //69
"Key: F6", //72
"Key: 6", //73
"Key: Y", //74
"Key: H", //75
"Key: B", //76
"Key: Page Up", //78
"Key: Right Shift", //79
"Key: Num Lock", //80
"Key: Number Pad 6", //81
"Key: F7", //84
"Key: 7", //85
"Key: U", //86
"Key: J", //87
"Key: N", //88
"Key: Right Alt", //89
"Key: ]", //90
"Key: Right Control", //91
"Key: Number Pad /", //92
"Key: Number Pad 1", //93
"Key: F8", //96
"Key: 8", //97
"Key: I", //98
"Key: K", //99
"Key: M", //100
"Key: Right Windows", //101
"Key: \\ (ANSI)", //102
"Key: Up Arrow", //103
"Key: Number Pad *", //104
"Key: Number Pad 2", //105
"Key: F9", //108
"Key: 9", //109
"Key: O", //110
"Key: L", //111
"Key: ,", //112
"Key: Menu", //113
"Key: Left Arrow", //115
"Key: Number Pad -", //116
"Key: Number Pad 3", //117
"Key: F10", //120
"Key: 0", //121
"Key: P", //122
"Key: ;", //123
"Key: .", //124
"Key: Enter", //126
"Key: Down Arrow", //127
"Key: Number Pad +", //128
"Key: Number Pad 0", //129
"Key: F11", //132
"Key: -", //133
"Key: [", //134
"Key: '", //135
"Key: /", //136
"Key: Brightness", //137
"Key: Right Arrow", //139
"Key: Number Pad Enter",//140
"Key: Number Pad .", //141
"Key: / (ISO)",
"Key: \\ (ISO)",
};
static const char* led_names_k95_plat[] =
{
"Key: Escape", //0
"Key: `", //1
"Key: Tab", //2
"Key: Caps Lock", //3
"Key: Left Shift", //4
"Key: Left Control", //5
"Key: F12", //6
"Key: =", //7
"Key: Lock", //8
"Key: Number Pad 7", //9
"Key: F1", //12
"Key: 1", //13
"Key: Q", //14
"Key: A", //15
"Key: Left Windows", //17
"Key: Print Screen", //18
"Key: Media Mute", //20
"Key: Number Pad 8", //21
"Key: F2", //24
"Key: 2", //25
"Key: W", //26
"Key: S", //27
"Key: Z", //28
"Key: Left Alt", //29
"Key: Scroll Lock", //30
"Key: Backspace", //31
"Key: Media Stop", //32
"Key: Number Pad 9", //33
"Key: F3", //36
"Key: 3", //37
"Key: E", //38
"Key: D", //39
"Key: X", //40
"Key: Pause/Break", //42
"Key: Delete", //43
"Key: Media Previous", //44
"Key: F4", //48
"Key: 4", //49
"Key: R", //50
"Key: F", //51
"Key: C", //52
"Key: Space", //53
"Key: Insert", //54
"Key: End", //55
"Key: Media Play/Pause",//56
"Key: Number Pad 4", //57
"Key: F5", //60
"Key: 5", //61
"Key: T", //62
"Key: G", //63
"Key: V", //64
"Key: Home", //66
"Key: Page Down", //67
"Key: Media Next", //68
"Key: Number Pad 5", //69
"Key: F6", //72
"Key: 6", //73
"Key: Y", //74
"Key: H", //75
"Key: B", //76
"Key: Page Up", //78
"Key: Right Shift", //79
"Key: Num Lock", //80
"Key: Number Pad 6", //81
"Key: F7", //84
"Key: 7", //85
"Key: U", //86
"Key: J", //87
"Key: N", //88
"Key: Right Alt", //89
"Key: ]", //90
"Key: Right Control", //91
"Key: Number Pad /", //92
"Key: Number Pad 1", //93
"Key: F8", //96
"Key: 8", //97
"Key: I", //98
"Key: K", //99
"Key: M", //100
"Key: Right Windows", //101
"Key: \\ (ANSI)", //102
"Key: Up Arrow", //103
"Key: Number Pad *", //104
"Key: Number Pad 2", //105
"Key: F9", //108
"Key: 9", //109
"Key: O", //110
"Key: L", //111
"Key: ,", //112
"Key: Menu", //113
"Key: Left Arrow", //115
"Key: Number Pad -", //116
"Key: Number Pad 3", //117
"Key: F10", //120
"Key: 0", //121
"Key: P", //122
"Key: ;", //123
"Key: .", //124
"Key: Enter", //126
"Key: Down Arrow", //127
"Key: Number Pad +", //128
"Key: Number Pad 0", //129
"Key: F11", //132
"Key: -", //133
"Key: [", //134
"Key: '", //135
"Key: /", //136
"Key: Brightness", //137
"Key: Right Arrow", //139
"Key: Number Pad Enter",//140
"Key: Number Pad .", //141
"Key: / (ISO)",
"Key: \\ (ISO)",
"Key: Macro G1",
"Key: Macro G2",
"Key: Macro G3",
"Key: Macro G4",
"Key: Macro G5",
"Key: Macro G6",
"Light Bar 1",
"Light Bar 2",
"Light Bar 3",
"Light Bar 4",
"Light Bar 5",
"Light Bar 6",
"Light Bar 7",
"Light Bar 8",
"Light Bar 9",
"Light Bar 10",
"Light Bar 11",
"Light Bar 12",
"Light Bar 13",
"Light Bar 14",
"Light Bar 15",
"Light Bar 16",
"Light Bar 17",
"Light Bar 18",
"Light Bar 19"
};
static const char* led_names_k95[] =
{
"Key: Escape", //0
"Key: `", //1
"Key: Tab", //2
"Key: Caps Lock", //3
"Key: Left Shift", //4
"Key: Left Control", //5
"Key: F12", //6
"Key: =", //7
"Key: Lock", //8
"Key: Number Pad 7", //9
"Key: F1", //12
"Key: 1", //13
"Key: Q", //14
"Key: A", //15
"Key: Left Windows", //17
"Key: Print Screen", //18
"Key: Media Mute", //20
"Key: Number Pad 8", //21
"Key: F2", //24
"Key: 2", //25
"Key: W", //26
"Key: S", //27
"Key: Z", //28
"Key: Left Alt", //29
"Key: Scroll Lock", //30
"Key: Backspace", //31
"Key: Media Stop", //32
"Key: Number Pad 9", //33
"Key: F3", //36
"Key: 3", //37
"Key: E", //38
"Key: D", //39
"Key: X", //40
"Key: Pause/Break", //42
"Key: Delete", //43
"Key: Media Previous", //44
"Key: F4", //48
"Key: 4", //49
"Key: R", //50
"Key: F", //51
"Key: C", //52
"Key: Space", //53
"Key: Insert", //54
"Key: End", //55
"Key: Media Play/Pause",//56
"Key: Number Pad 4", //57
"Key: F5", //60
"Key: 5", //61
"Key: T", //62
"Key: G", //63
"Key: V", //64
"Key: Home", //66
"Key: Page Down", //67
"Key: Media Next", //68
"Key: Number Pad 5", //69
"Key: F6", //72
"Key: 6", //73
"Key: Y", //74
"Key: H", //75
"Key: B", //76
"Key: Page Up", //78
"Key: Right Shift", //79
"Key: Num Lock", //80
"Key: Number Pad 6", //81
"Key: F7", //84
"Key: 7", //85
"Key: U", //86
"Key: J", //87
"Key: N", //88
"Key: Right Alt", //89
"Key: ]", //90
"Key: Right Control", //91
"Key: Number Pad /", //92
"Key: Number Pad 1", //93
"Key: F8", //96
"Key: 8", //97
"Key: I", //98
"Key: K", //99
"Key: M", //100
"Key: Right Windows", //101
"Key: \\ (ANSI)", //102
"Key: Up Arrow", //103
"Key: Number Pad *", //104
"Key: Number Pad 2", //105
"Key: F9", //108
"Key: 9", //109
"Key: O", //110
"Key: L", //111
"Key: ,", //112
"Key: Menu", //113
"Key: Left Arrow", //115
"Key: Number Pad -", //116
"Key: Number Pad 3", //117
"Key: F10", //120
"Key: 0", //121
"Key: P", //122
"Key: ;", //123
"Key: .", //124
"Key: Enter", //126
"Key: Down Arrow", //127
"Key: Number Pad +", //128
"Key: Number Pad 0", //129
"Key: F11", //132
"Key: -", //133
"Key: [", //134
"Key: '", //135
"Key: /", //136
"Key: Brightness", //137
"Key: Right Arrow", //139
"Key: Number Pad Enter",//140
"Key: Number Pad .", //141
"Key: / (ISO)",
"Key: \\ (ISO)",
"Key: Macro G1",
"Key: Macro G2",
"Key: Macro G3",
"Key: Macro G4",
"Key: Macro G5",
"Key: Macro G6",
"Key: Macro G7",
"Key: Macro G8",
"Key: Macro G9",
"Key: Macro G10",
"Key: Macro G11",
"Key: Macro G12",
"Key: Macro G13",
"Key: Macro G14",
"Key: Macro G15",
"Key: Macro G16",
"Key: Macro G17",
"Key: Macro G18",
"Key: MR",
"Key: M1",
"Key: M2",
"Key: M3",
};
static const char* corsair_mouse_leds[] =
{
"Mouse LED 1",
"Mouse LED 2",
"Mouse LED 3",
"Mouse LED 4",
"Mouse LED 5",
"Mouse LED 6",
"Mouse LED 7",
"Mouse LED 8",
"Mouse LED 9",
"Mouse LED 10",
"Mouse LED 11",
"Mouse LED 12",
"Mouse LED 13",
"Mouse LED 14",
"Mouse LED 15",
};
static const char* corsair_sabre_rgb_leds[] =
{
"",
"Underglow",
"Logo",
"DPI",
"Scroll Wheel",
"",
"",
"",
"",
"",
"",
"",
"",
"",
""
};
static const char* corsair_harpoon_pro_leds[] =
{
"",
"",
"",
"Logo",
"",
"",
"",
"",
"",
"",
"",
"",
"",
"",
"",
};
RGBController_CorsairPeripheral::RGBController_CorsairPeripheral(CorsairPeripheralController* corsair_ptr)
{
corsair = corsair_ptr;
name = "Corsair RGB Peripheral Device";
description = "Corsair RGB Peripheral Device";
type = corsair->GetDeviceType();
version = corsair->GetFirmwareString();
location = corsair->GetDeviceLocation();
physical_layout = corsair->GetPhysicalLayout();
logical_layout = corsair->GetLogicalLayout();
mode Direct;
Direct.name = "Direct";
Direct.value = 0;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
SetupZones();
}
RGBController_CorsairPeripheral::~RGBController_CorsairPeripheral()
{
/*---------------------------------------------------------*\
| Delete the matrix map |
\*---------------------------------------------------------*/
for(unsigned int zone_index = 0; zone_index < zones.size(); zone_index++)
{
if(zones[zone_index].matrix_map != NULL)
{
delete zones[zone_index].matrix_map;
}
}
}
void RGBController_CorsairPeripheral::SetupZones()
{
/*---------------------------------------------------------*\
| Determine number of zones |
| For now, keyboard has 2 zones and mousemat has 1 |
\*---------------------------------------------------------*/
unsigned int num_zones = 0;
switch(type)
{
case DEVICE_TYPE_KEYBOARD:
if (logical_layout == CORSAIR_TYPE_K95_PLAT)
{
num_zones = 2;
break;
}
num_zones = 1;
break;
case DEVICE_TYPE_MOUSE:
case DEVICE_TYPE_MOUSEMAT:
num_zones = 1;
break;
case DEVICE_TYPE_HEADSET_STAND:
num_zones = 2;
break;
}
/*---------------------------------------------------------*\
| Set up zones |
\*---------------------------------------------------------*/
unsigned int total_led_count = 0;
for(unsigned int zone_idx = 0; zone_idx < num_zones; zone_idx++)
{
zone new_zone;
switch(type)
{
case DEVICE_TYPE_KEYBOARD:
if (logical_layout == CORSAIR_TYPE_K95_PLAT)
{
new_zone.name = zone_names_k95_platinum[zone_idx];
new_zone.type = zone_types_k95_platinum[zone_idx];
new_zone.leds_min = zone_sizes_k95_platinum[zone_idx];
new_zone.leds_max = zone_sizes_k95_platinum[zone_idx];
new_zone.leds_count = zone_sizes_k95_platinum[zone_idx];
if(zone_types[zone_idx] == ZONE_TYPE_MATRIX)
{
new_zone.matrix_map = new matrix_map_type;
new_zone.matrix_map->height = 7;
new_zone.matrix_map->width = 24;
new_zone.matrix_map->map = (unsigned int *)&matrix_map_k95_platinum;
}
else
{
new_zone.matrix_map = NULL;
}
}
else if (logical_layout == CORSAIR_TYPE_K95)
{
new_zone.name = zone_names_k95[zone_idx];
new_zone.type = zone_types_k95[zone_idx];
new_zone.leds_min = zone_sizes_k95[zone_idx];
new_zone.leds_max = zone_sizes_k95[zone_idx];
new_zone.leds_count = zone_sizes_k95[zone_idx];
if(zone_types[zone_idx] == ZONE_TYPE_MATRIX)
{
new_zone.matrix_map = new matrix_map_type;
new_zone.matrix_map->height = 7;
new_zone.matrix_map->width = 26;
new_zone.matrix_map->map = (unsigned int *)&matrix_map_k95;
}
else
{
new_zone.matrix_map = NULL;
}
}
else //default layout
{
new_zone.name = zone_names[zone_idx];
new_zone.type = zone_types[zone_idx];
new_zone.leds_min = zone_sizes[zone_idx];
new_zone.leds_max = zone_sizes[zone_idx];
new_zone.leds_count = zone_sizes[zone_idx];
if(zone_types[zone_idx] == ZONE_TYPE_MATRIX)
{
new_zone.matrix_map = new matrix_map_type;
new_zone.matrix_map->height = 6;
new_zone.matrix_map->width = 23;
new_zone.matrix_map->map = (unsigned int *)&matrix_map;
}
else
{
new_zone.matrix_map = NULL;
}
}
break;
case DEVICE_TYPE_MOUSE:
new_zone.name = "Mouse Zone";
new_zone.type = ZONE_TYPE_SINGLE;
new_zone.leds_min = 15;
new_zone.leds_max = 15;
new_zone.leds_count = 15;
new_zone.matrix_map = NULL;
break;
case DEVICE_TYPE_MOUSEMAT:
new_zone.name = "Mousemat Zone";
new_zone.type = ZONE_TYPE_LINEAR;
new_zone.leds_min = 15;
new_zone.leds_max = 15;
new_zone.leds_count = 15;
new_zone.matrix_map = NULL;
break;
case DEVICE_TYPE_HEADSET_STAND:
if(zone_idx == 0)
{
new_zone.name = "Base LED Strip";
new_zone.type = ZONE_TYPE_LINEAR;
new_zone.leds_min = 8;
new_zone.leds_max = 8;
new_zone.leds_count = 8;
new_zone.matrix_map = NULL;
}
else
{
new_zone.name = "Logo";
new_zone.type = ZONE_TYPE_SINGLE;
new_zone.leds_min = 1;
new_zone.leds_max = 1;
new_zone.leds_count = 1;
new_zone.matrix_map = NULL;
}
break;
}
zones.push_back(new_zone);
total_led_count += new_zone.leds_count;
}
for(unsigned int led_idx = 0; led_idx < total_led_count; led_idx++)
{
led new_led;
switch(type)
{
case DEVICE_TYPE_KEYBOARD:
if(logical_layout == CORSAIR_TYPE_K95_PLAT)
{
new_led.name = led_names_k95_plat[led_idx];
}
else if(logical_layout == CORSAIR_TYPE_K95)
{
new_led.name = led_names_k95[led_idx];
}
else
{
new_led.name = led_names[led_idx];
}
break;
case DEVICE_TYPE_MOUSE:
new_led.name = corsair_mouse_leds[led_idx];
break;
case DEVICE_TYPE_MOUSEMAT:
case DEVICE_TYPE_HEADSET_STAND:
new_led.name = "Mousemat LED ";
new_led.name.append(std::to_string(led_idx + 1));
break;
}
leds.push_back(new_led);
}
SetupColors();
}
void RGBController_CorsairPeripheral::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_CorsairPeripheral::DeviceUpdateLEDs()
{
corsair->SetLEDs(colors);
}
void RGBController_CorsairPeripheral::UpdateZoneLEDs(int /*zone*/)
{
corsair->SetLEDs(colors);
}
void RGBController_CorsairPeripheral::UpdateSingleLED(int /*led*/)
{
corsair->SetLEDs(colors);
}
void RGBController_CorsairPeripheral::SetCustomMode()
{
active_mode = 0;
}
void RGBController_CorsairPeripheral::DeviceUpdateMode()
{
}
@@ -36,7 +36,7 @@ std::string CorsairVengeanceController::GetDeviceLocation()
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
return(return_string);
}
unsigned int CorsairVengeanceController::GetLEDCount()
@@ -1,9 +1,7 @@
#include "Detector.h"
#include "CorsairVengeanceController.h"
#include "RGBController.h"
#include "RGBController_CorsairVengeance.h"
#include "i2c_smbus.h"
#include "pci_ids.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
@@ -59,74 +57,69 @@ void DetectCorsairVengeanceControllers(std::vector<i2c_smbus_interface*> &busses
for (unsigned int bus = 0; bus < busses.size(); bus++)
{
IF_DRAM_SMBUS(busses[bus]->pci_vendor, busses[bus]->pci_device)
// Check for Corsair controller at 0x58
if (TestForCorsairVengeanceController(busses[bus], 0x58))
{
// Check for Corsair controller at 0x58
if (TestForCorsairVengeanceController(busses[bus], 0x58))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x58);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
new_corsair = new CorsairVengeanceController(busses[bus], 0x58);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x59
if (TestForCorsairVengeanceController(busses[bus], 0x59))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x59);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x59
if (TestForCorsairVengeanceController(busses[bus], 0x59))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x59);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5A
if (TestForCorsairVengeanceController(busses[bus], 0x5A))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5A);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5A
if (TestForCorsairVengeanceController(busses[bus], 0x5A))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5A);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5B
if (TestForCorsairVengeanceController(busses[bus], 0x5B))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5B);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5B
if (TestForCorsairVengeanceController(busses[bus], 0x5B))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5B);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5C
if (TestForCorsairVengeanceController(busses[bus], 0x5C))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5C);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5C
if (TestForCorsairVengeanceController(busses[bus], 0x5C))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5C);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5D
if (TestForCorsairVengeanceController(busses[bus], 0x5D))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5D);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5D
if (TestForCorsairVengeanceController(busses[bus], 0x5D))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5D);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5E
if (TestForCorsairVengeanceController(busses[bus], 0x5E))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5E);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5E
if (TestForCorsairVengeanceController(busses[bus], 0x5E))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5E);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5F
if (TestForCorsairVengeanceController(busses[bus], 0x5F))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5F);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5F
if (TestForCorsairVengeanceController(busses[bus], 0x5F))
{
new_corsair = new CorsairVengeanceController(busses[bus], 0x5F);
new_controller = new RGBController_CorsairVengeance(new_corsair);
rgb_controllers.push_back(new_controller);
}
}
} /* DetectCorsairVengeanceControllers() */
REGISTER_I2C_DETECTOR("Corsair Vengeance", DetectCorsairVengeanceControllers);
} /* DetectCorsairVengeanceControllers() */
@@ -47,7 +47,7 @@ std::string CorsairVengeanceProController::GetDeviceLocation()
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
return(return_string);
}
unsigned int CorsairVengeanceProController::GetLEDCount()
@@ -1,9 +1,7 @@
#include "Detector.h"
#include "CorsairVengeanceProController.h"
#include "RGBController.h"
#include "RGBController_CorsairVengeancePro.h"
#include "i2c_smbus.h"
#include "pci_ids.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
@@ -67,74 +65,69 @@ void DetectCorsairVengeanceProControllers(std::vector<i2c_smbus_interface*> &bus
for (unsigned int bus = 0; bus < busses.size(); bus++)
{
IF_DRAM_SMBUS(busses[bus]->pci_vendor, busses[bus]->pci_device)
// Check for Corsair controller at 0x58
if (TestForCorsairVengeanceProController(busses[bus], 0x58))
{
// Check for Corsair controller at 0x58
if (TestForCorsairVengeanceProController(busses[bus], 0x58))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x58);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x58);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x59
if (TestForCorsairVengeanceProController(busses[bus], 0x59))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x59);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x59
if (TestForCorsairVengeanceProController(busses[bus], 0x59))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x59);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5A
if (TestForCorsairVengeanceProController(busses[bus], 0x5A))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5A);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5A
if (TestForCorsairVengeanceProController(busses[bus], 0x5A))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5A);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5B
if (TestForCorsairVengeanceProController(busses[bus], 0x5B))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5B);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5B
if (TestForCorsairVengeanceProController(busses[bus], 0x5B))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5B);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5C
if (TestForCorsairVengeanceProController(busses[bus], 0x5C))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5C);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5C
if (TestForCorsairVengeanceProController(busses[bus], 0x5C))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5C);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5D
if (TestForCorsairVengeanceProController(busses[bus], 0x5D))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5D);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5D
if (TestForCorsairVengeanceProController(busses[bus], 0x5D))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5D);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5E
if (TestForCorsairVengeanceProController(busses[bus], 0x5E))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5E);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5E
if (TestForCorsairVengeanceProController(busses[bus], 0x5E))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5E);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5F
if (TestForCorsairVengeanceProController(busses[bus], 0x5F))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5F);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
// Check for Corsair controller at 0x5F
if (TestForCorsairVengeanceProController(busses[bus], 0x5F))
{
new_corsair_pro = new CorsairVengeanceProController(busses[bus], 0x5F);
new_controller = new RGBController_CorsairVengeancePro(new_corsair_pro);
rgb_controllers.push_back(new_controller);
}
}
} /* DetectCorsairVengeanceProControllers() */
REGISTER_I2C_DETECTOR("Corsair Vengeance Pro", DetectCorsairVengeanceProControllers);
} /* DetectCorsairVengeanceProControllers() */
@@ -34,7 +34,7 @@ std::string CrucialController::GetDeviceLocation()
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
return(return_string);
}
unsigned int CrucialController::GetLEDCount()
@@ -1,9 +1,7 @@
#include "Detector.h"
#include "CrucialController.h"
#include "RGBController.h"
#include "RGBController_Crucial.h"
#include "i2c_smbus.h"
#include "pci_ids.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
@@ -75,21 +73,16 @@ void DetectCrucialControllers(std::vector<i2c_smbus_interface*> &busses, std::ve
for (unsigned int bus = 0; bus < busses.size(); bus++)
{
IF_DRAM_SMBUS(busses[bus]->pci_vendor, busses[bus]->pci_device)
// Add Crucial controllers
for (unsigned int address_list_idx = 0; address_list_idx < CRUCIAL_ADDRESS_COUNT; address_list_idx++)
{
// Add Crucial controllers
for (unsigned int address_list_idx = 0; address_list_idx < CRUCIAL_ADDRESS_COUNT; address_list_idx++)
if (TestForCrucialController(busses[bus], crucial_addresses[address_list_idx]))
{
if (TestForCrucialController(busses[bus], crucial_addresses[address_list_idx]))
{
new_crucial = new CrucialController(busses[bus], crucial_addresses[address_list_idx]);
new_controller = new RGBController_Crucial(new_crucial);
rgb_controllers.push_back(new_controller);
}
new_crucial = new CrucialController(busses[bus], crucial_addresses[address_list_idx]);
new_controller = new RGBController_Crucial(new_crucial);
rgb_controllers.push_back(new_controller);
}
}
}
} /* DetectCrucialControllers() */
REGISTER_I2C_DETECTOR("Crucial", DetectCrucialControllers);
@@ -1,495 +0,0 @@
#include "Detector.h"
#include "RGBController.h"
#include "RGBController_Dummy.h"
#include "SettingsManager.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
#include <fcntl.h>
#include <string.h>
#include <fstream>
#include <iostream>
#include <string>
//0xFFFFFFFF indicates an unused entry in matrix
#define NA 0xFFFFFFFF
static unsigned int debug_keyboard_matrix_map[6][23] =
{ { 0, NA, 16, 30, 44, 54, NA, 65, 75, 84, 95, NA, 8, 23 , 38, 6 , 22, 36, 49, NA, NA, NA, NA },
{ 1, 17, 31, 45, 55, 66, 76, 85, 96, 9, 24, NA, 39, 7 , 37, NA , 60, 70, 80, 52, 63, 73, 82 },
{ 2, NA, 18, 32, 46, 56, NA, 67, 77, 86, 97, 10, 25, 40 , 90, 101, 50, 61, 71, 51, 62, 72, 93 },
{ 3, NA, 19, 33, 47, 57, NA, 68, 78, 87, 98, 11, 26, 41 , 28, 14 , NA, NA, NA, 92, 103, 53, NA },
{ 4, 20, 34, 48, 58, 69, NA, 79, NA, 88, 99, 12, 27, 42 , 81, NA , NA, 102, NA, 64, 74, 83, 104 },
{ 5, 21, 35, NA, NA, NA, NA, 59, NA, NA, NA, NA, 89, 100, 13, 91 , 15, 29, 43, 94, NA, 105, NA } };
static const char *led_names[] =
{
"Key: Escape",
"Key: `",
"Key: Tab",
"Key: Caps Lock",
"Key: Left Shift",
"Key: Left Control",
"Key: F12",
"Key: =",
"Key: F9",
"Key: 9",
"Key: O",
"Key: L",
"Key: ,",
"Key: Menu",
"Key: Enter (ISO)",
"Key: Left Arrow",
"Key: F1",
"Key: 1",
"Key: Q",
"Key: A",
"Key: \\ (ISO)",
"Key: Left Windows",
"Key: Print Screen",
"Key: F10",
"Key: 0",
"Key: P",
"Key: ;",
"Key: .",
"Key: Enter",
"Key: Down Arrow",
"Key: F2",
"Key: 2",
"Key: W",
"Key: S",
"Key: Z",
"Key: Left Alt",
"Key: Scroll Lock",
"Key: Backspace",
"Key: F11",
"Key: -",
"Key: [",
"Key: '",
"Key: /",
"Key: Right Arrow",
"Key: F3",
"Key: 3",
"Key: E",
"Key: D",
"Key: X",
"Key: Pause/Break",
"Key: Delete",
"Key: Number Pad 7",
"Key: Num Lock",
"Key: Number Pad 6",
"Key: F4",
"Key: 4",
"Key: R",
"Key: F",
"Key: C",
"Key: Space",
"Key: Insert",
"Key: End",
"Key: Number Pad 8",
"Key: Number Pad /",
"Key: Number Pad 1",
"Key: F5",
"Key: 5",
"Key: T",
"Key: G",
"Key: V",
"Key: Home",
"Key: Page Down",
"Key: Number Pad 9",
"Key: Number Pad *",
"Key: Number Pad 2",
"Key: F6",
"Key: 6",
"Key: Y",
"Key: H",
"Key: B",
"Key: Page Up",
"Key: Right Shift",
"Key: Number Pad -",
"Key: Number Pad 3",
"Key: F7",
"Key: 7",
"Key: U",
"Key: J",
"Key: N",
"Key: Right Alt",
"Key: ]",
"Key: Right Control",
"Key: Number Pad 4",
"Key: Number Pad +",
"Key: Number Pad 0",
"Key: F8",
"Key: 8",
"Key: I",
"Key: K",
"Key: M",
"Key: Right Windows",
"Key: \\ (ANSI)",
"Key: Up Arrow",
"Key: Number Pad 5",
"Key: Number Pad Enter",
"Key: Number Pad .",
"RGB Strip 1",
"RGB Strip 2",
"RGB Strip 3",
"RGB Strip 4",
"RGB Strip 5",
"RGB Strip 6",
"RGB Strip 7",
"RGB Strip 8",
"RGB Strip 9",
"RGB Strip 10",
"RGB Strip 11",
"RGB Strip 12",
"RGB Strip 13",
"RGB Strip 14",
"RGB Strip 15",
"RGB Strip 16",
"RGB Strip 17",
"RGB Strip 18",
"Key: Media Previous",
"Key: Media Play/Pause",
"Key: Media Next",
"Key: Media Mute"
};
/******************************************************************************************\
* *
* DetectDebugControllers *
* *
* Add dummy controllers based on debug.txt *
* *
\******************************************************************************************/
void DetectDebugControllers(std::vector<RGBController*> &rgb_controllers)
{
json debug_settings;
/*-------------------------------------------------*\
| Get Debug Device settings from settings manager |
\*-------------------------------------------------*/
debug_settings = ResourceManager::get()->GetSettingsManager()->GetSettings("Setting_DebugDevices");
/*-------------------------------------------------*\
| If the Debug settings contains devices, process |
\*-------------------------------------------------*/
if(debug_settings.contains("devices"))
{
for(unsigned int device_idx = 0; device_idx < debug_settings["devices"].size(); device_idx++)
{
std::string type = "";
if(debug_settings["devices"][device_idx].contains("type"))
{
type = debug_settings["devices"][device_idx]["type"];
}
if(type == "motherboard")
{
/*---------------------------------------------------------*\
| Create a dummy motherboard |
\*---------------------------------------------------------*/
RGBController_Dummy* dummy_motherboard = new RGBController_Dummy();
dummy_motherboard->name = "Debug Motherboard";
dummy_motherboard->type = DEVICE_TYPE_MOTHERBOARD;
dummy_motherboard->description = "Debug Motherboard Device";
dummy_motherboard->location = "Debug Motherboard Location";
dummy_motherboard->version = "Debug Motherboard Version";
dummy_motherboard->serial = "Debug Motherboard Serial";
/*---------------------------------------------------------*\
| Create a direct mode for the dummy motherboard |
\*---------------------------------------------------------*/
mode dummy_motherboard_direct_mode;
dummy_motherboard_direct_mode.name = "Direct";
dummy_motherboard_direct_mode.value = 0;
dummy_motherboard_direct_mode.flags = MODE_FLAG_HAS_PER_LED_COLOR;
dummy_motherboard_direct_mode.color_mode = MODE_COLORS_PER_LED;
dummy_motherboard->modes.push_back(dummy_motherboard_direct_mode);
/*---------------------------------------------------------*\
| Create a single zone/LED for the dummy motherboard |
\*---------------------------------------------------------*/
zone dummy_motherboard_single_zone;
dummy_motherboard_single_zone.name = "Single Zone";
dummy_motherboard_single_zone.type = ZONE_TYPE_SINGLE;
dummy_motherboard_single_zone.leds_min = 1;
dummy_motherboard_single_zone.leds_max = 1;
dummy_motherboard_single_zone.leds_count = 1;
dummy_motherboard_single_zone.matrix_map = NULL;
dummy_motherboard->zones.push_back(dummy_motherboard_single_zone);
led dummy_motherboard_single_led;
dummy_motherboard_single_led.name = "Single LED";
dummy_motherboard->leds.push_back(dummy_motherboard_single_led);
/*---------------------------------------------------------*\
| Create a linear zone for the dummy motherboard |
\*---------------------------------------------------------*/
zone dummy_motherboard_linear_zone;
dummy_motherboard_linear_zone.name = "Linear Zone";
dummy_motherboard_linear_zone.type = ZONE_TYPE_LINEAR;
dummy_motherboard_linear_zone.leds_min = 10;
dummy_motherboard_linear_zone.leds_max = 10;
dummy_motherboard_linear_zone.leds_count = 10;
dummy_motherboard_linear_zone.matrix_map = NULL;
dummy_motherboard->zones.push_back(dummy_motherboard_linear_zone);
for(std::size_t led_idx = 0; led_idx < 10; led_idx++)
{
led dummy_motherboard_linear_led;
dummy_motherboard_linear_led.name = "Linear LED " + std::to_string(led_idx);
dummy_motherboard->leds.push_back(dummy_motherboard_linear_led);
}
dummy_motherboard->SetupColors();
/*---------------------------------------------------------*\
| Push the dummy motherboard onto the controller list |
\*---------------------------------------------------------*/
rgb_controllers.push_back(dummy_motherboard);
}
else if(type == "dram")
{
/*---------------------------------------------------------*\
| Create a dummy DRAM |
\*---------------------------------------------------------*/
RGBController_Dummy* dummy_dram = new RGBController_Dummy();
dummy_dram->name = "Debug DRAM";
dummy_dram->type = DEVICE_TYPE_DRAM;
dummy_dram->description = "Debug DRAM Device";
dummy_dram->location = "Debug DRAM Location";
dummy_dram->version = "Debug DRAM Version";
dummy_dram->serial = "Debug DRAM Serial";
/*---------------------------------------------------------*\
| Create a direct mode for the dummy DRAM |
\*---------------------------------------------------------*/
mode dummy_dram_direct_mode;
dummy_dram_direct_mode.name = "Direct";
dummy_dram_direct_mode.value = 0;
dummy_dram_direct_mode.flags = MODE_FLAG_HAS_PER_LED_COLOR;
dummy_dram_direct_mode.color_mode = MODE_COLORS_PER_LED;
dummy_dram->modes.push_back(dummy_dram_direct_mode);
/*---------------------------------------------------------*\
| Create a single zone/LED for the dummy DRAM |
\*---------------------------------------------------------*/
zone dummy_dram_single_zone;
dummy_dram_single_zone.name = "Single Zone";
dummy_dram_single_zone.type = ZONE_TYPE_SINGLE;
dummy_dram_single_zone.leds_min = 1;
dummy_dram_single_zone.leds_max = 1;
dummy_dram_single_zone.leds_count = 1;
dummy_dram_single_zone.matrix_map = NULL;
dummy_dram->zones.push_back(dummy_dram_single_zone);
led dummy_dram_single_led;
dummy_dram_single_led.name = "Single LED";
dummy_dram->leds.push_back(dummy_dram_single_led);
/*---------------------------------------------------------*\
| Create a linear zone for the dummy DRAM |
\*---------------------------------------------------------*/
zone dummy_dram_linear_zone;
dummy_dram_linear_zone.name = "Linear Zone";
dummy_dram_linear_zone.type = ZONE_TYPE_LINEAR;
dummy_dram_linear_zone.leds_min = 5;
dummy_dram_linear_zone.leds_max = 5;
dummy_dram_linear_zone.leds_count = 5;
dummy_dram_linear_zone.matrix_map = NULL;
dummy_dram->zones.push_back(dummy_dram_linear_zone);
for(std::size_t led_idx = 0; led_idx < 5; led_idx++)
{
led dummy_dram_linear_led;
dummy_dram_linear_led.name = "Linear LED " + std::to_string(led_idx);
dummy_dram->leds.push_back(dummy_dram_linear_led);
}
dummy_dram->SetupColors();
/*---------------------------------------------------------*\
| Push the dummy DRAM onto the controller list |
\*---------------------------------------------------------*/
rgb_controllers.push_back(dummy_dram);
}
else if(type == "gpu")
{
/*---------------------------------------------------------*\
| Create a dummy GPU |
\*---------------------------------------------------------*/
RGBController_Dummy* dummy_gpu = new RGBController_Dummy();
dummy_gpu->name = "Debug GPU";
dummy_gpu->type = DEVICE_TYPE_GPU;
dummy_gpu->description = "Debug GPU Device";
dummy_gpu->location = "Debug GPU Location";
dummy_gpu->version = "Debug GPU Version";
dummy_gpu->serial = "Debug GPU Serial";
/*---------------------------------------------------------*\
| Create a direct mode for the dummy GPU |
\*---------------------------------------------------------*/
mode dummy_gpu_direct_mode;
dummy_gpu_direct_mode.name = "Direct";
dummy_gpu_direct_mode.value = 0;
dummy_gpu_direct_mode.flags = MODE_FLAG_HAS_PER_LED_COLOR;
dummy_gpu_direct_mode.color_mode = MODE_COLORS_PER_LED;
dummy_gpu->modes.push_back(dummy_gpu_direct_mode);
/*---------------------------------------------------------*\
| Create a single zone/LED for the dummy GPU |
\*---------------------------------------------------------*/
zone dummy_gpu_single_zone;
dummy_gpu_single_zone.name = "Single Zone";
dummy_gpu_single_zone.type = ZONE_TYPE_SINGLE;
dummy_gpu_single_zone.leds_min = 1;
dummy_gpu_single_zone.leds_max = 1;
dummy_gpu_single_zone.leds_count = 1;
dummy_gpu_single_zone.matrix_map = NULL;
dummy_gpu->zones.push_back(dummy_gpu_single_zone);
led dummy_gpu_single_led;
dummy_gpu_single_led.name = "Single LED";
dummy_gpu->leds.push_back(dummy_gpu_single_led);
/*---------------------------------------------------------*\
| Create a linear zone for the dummy GPU |
\*---------------------------------------------------------*/
zone dummy_gpu_linear_zone;
dummy_gpu_linear_zone.name = "Linear Zone";
dummy_gpu_linear_zone.type = ZONE_TYPE_LINEAR;
dummy_gpu_linear_zone.leds_min = 15;
dummy_gpu_linear_zone.leds_max = 15;
dummy_gpu_linear_zone.leds_count = 15;
dummy_gpu_linear_zone.matrix_map = NULL;
dummy_gpu->zones.push_back(dummy_gpu_linear_zone);
for(std::size_t led_idx = 0; led_idx < 15; led_idx++)
{
led dummy_gpu_linear_led;
dummy_gpu_linear_led.name = "Linear LED " + std::to_string(led_idx);
dummy_gpu->leds.push_back(dummy_gpu_linear_led);
}
dummy_gpu->SetupColors();
/*---------------------------------------------------------*\
| Push the dummy GPU onto the controller list |
\*---------------------------------------------------------*/
rgb_controllers.push_back(dummy_gpu);
}
else if(type == "keyboard")
{
/*---------------------------------------------------------*\
| Create a dummy Keyboard |
\*---------------------------------------------------------*/
RGBController_Dummy* dummy_keyboard = new RGBController_Dummy();
dummy_keyboard->name = "Debug Keyboard";
dummy_keyboard->type = DEVICE_TYPE_KEYBOARD;
dummy_keyboard->description = "Debug Keyboard Device";
dummy_keyboard->location = "Debug Keyboard Location";
dummy_keyboard->version = "Debug Keyboard Version";
dummy_keyboard->serial = "Debug Keyboard Serial";
/*---------------------------------------------------------*\
| Create a direct mode for the dummy GPU |
\*---------------------------------------------------------*/
mode dummy_gpu_direct_mode;
dummy_gpu_direct_mode.name = "Direct";
dummy_gpu_direct_mode.value = 0;
dummy_gpu_direct_mode.flags = MODE_FLAG_HAS_PER_LED_COLOR;
dummy_gpu_direct_mode.color_mode = MODE_COLORS_PER_LED;
dummy_keyboard->modes.push_back(dummy_gpu_direct_mode);
/*---------------------------------------------------------*\
| Create a matrix zone for the debug Keyboard |
\*---------------------------------------------------------*/
zone dummy_keyboard_matrix_zone;
dummy_keyboard_matrix_zone.name = "Keyboard Matrix Zone";
dummy_keyboard_matrix_zone.type = ZONE_TYPE_MATRIX;
dummy_keyboard_matrix_zone.leds_min = 106;
dummy_keyboard_matrix_zone.leds_max = 106;
dummy_keyboard_matrix_zone.leds_count = 106;
dummy_keyboard_matrix_zone.matrix_map = new matrix_map_type;
dummy_keyboard_matrix_zone.matrix_map->height = 6;
dummy_keyboard_matrix_zone.matrix_map->width = 23;
dummy_keyboard_matrix_zone.matrix_map->map = (unsigned int*)&debug_keyboard_matrix_map;
dummy_keyboard->zones.push_back(dummy_keyboard_matrix_zone);
/*---------------------------------------------------------*\
| Create a linear zone for the dummy GPU |
\*---------------------------------------------------------*/
zone dummy_keyboard_linear_zone;
dummy_keyboard_linear_zone.name = "Linear Zone";
dummy_keyboard_linear_zone.type = ZONE_TYPE_LINEAR;
dummy_keyboard_linear_zone.leds_min = 18;
dummy_keyboard_linear_zone.leds_max = 18;
dummy_keyboard_linear_zone.leds_count = 18;
dummy_keyboard_linear_zone.matrix_map = NULL;
dummy_keyboard->zones.push_back(dummy_keyboard_linear_zone);
for(std::size_t led_idx = 0; led_idx < 124; led_idx++)
{
led dummy_keyboard_led;
dummy_keyboard_led.name = led_names[led_idx];
dummy_keyboard->leds.push_back(dummy_keyboard_led);
}
dummy_keyboard->SetupColors();
/*---------------------------------------------------------*\
| Push the dummy Keyboard onto the controller list |
\*---------------------------------------------------------*/
rgb_controllers.push_back(dummy_keyboard);
}
}
}
} /* DetectDebugControllers() */
REGISTER_DETECTOR("Debug Controllers", DetectDebugControllers);
@@ -1,193 +0,0 @@
/*-----------------------------------------*\
| DuckyKeyboardController.cpp |
| |
| Driver for Ducky RGB keyboardlighting |
| controller |
| |
| Adam Honse (CalcProgrammer1) 7/4/2020 |
\*-----------------------------------------*/
#include <cstring>
#include "DuckyKeyboardController.h"
DuckyKeyboardController::DuckyKeyboardController(hid_device* dev_handle, const char* path)
{
dev = dev_handle;
location = path;
SendInitialize();
}
DuckyKeyboardController::~DuckyKeyboardController()
{
}
std::string DuckyKeyboardController::GetDeviceLocation()
{
return(location);
}
void DuckyKeyboardController::SendColors
(
unsigned char* color_data,
unsigned int color_data_size
)
{
unsigned int bytes_sent;
unsigned char* color_data_ptr = color_data;
SendInitializeColorPacket();
for(int i = 0; i < 8; i++)
{
bytes_sent = SendColorDataPacket(i, color_data_ptr, color_data_size);
color_data_ptr += bytes_sent;
color_data_size -= bytes_sent;
}
SendTerminateColorPacket();
}
void DuckyKeyboardController::SendInitialize()
{
char usb_buf[65];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Initialize Direct Mode packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0x41;
usb_buf[0x02] = 0x01;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
}
void DuckyKeyboardController::SendInitializeColorPacket()
{
char usb_buf[65];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Initialize Color packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0x56;
usb_buf[0x02] = 0x81;
usb_buf[0x05] = 0x01;
usb_buf[0x09] = 0x08;
usb_buf[0x0D] = 0xAA;
usb_buf[0x0E] = 0xAA;
usb_buf[0x0F] = 0xAA;
usb_buf[0x10] = 0xAA;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
}
unsigned int DuckyKeyboardController::SendColorDataPacket
(
unsigned char packet_id,
unsigned char* color_data,
unsigned int color_size
)
{
unsigned int bytes_sent;
char usb_buf[65];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Color Data packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0x56;
usb_buf[0x02] = 0x83;
usb_buf[0x03] = packet_id;
if(packet_id == 0x00)
{
usb_buf[0x05] = 0x01;
usb_buf[0x09] = 0x80;
usb_buf[0x0A] = 0x01;
usb_buf[0x0C] = 0xC1;
usb_buf[0x11] = 0xFF;
usb_buf[0x12] = 0xFF;
usb_buf[0x13] = 0xFF;
usb_buf[0x14] = 0xFF;
}
/*-----------------------------------------------------*\
| Copy in color data |
\*-----------------------------------------------------*/
if(packet_id == 0x00)
{
bytes_sent = 65 - 0x19;
if(color_size < bytes_sent)
{
bytes_sent = color_size;
}
memcpy(&usb_buf[0x19], color_data, bytes_sent);
}
else
{
bytes_sent = 65 - 0x05;
if(color_size < bytes_sent)
{
bytes_sent = color_size;
}
memcpy(&usb_buf[0x05], color_data, bytes_sent);
}
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
return(bytes_sent);
}
void DuckyKeyboardController::SendTerminateColorPacket()
{
char usb_buf[65];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up Terminate Color packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x00;
usb_buf[0x01] = 0x51;
usb_buf[0x02] = 0x28;
usb_buf[0x05] = 0xFF;
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_write(dev, (unsigned char *)usb_buf, 65);
}
@@ -1,44 +0,0 @@
/*-----------------------------------------*\
| DuckyKeyboardController.h |
| |
| Definitions and types for Ducky RGB |
| keyboard lighting controller |
| |
| Adam Honse (CalcProgrammer1) 7/4/2020 |
\*-----------------------------------------*/
#include "RGBController.h"
#include <string>
#include <hidapi/hidapi.h>
#pragma once
class DuckyKeyboardController
{
public:
DuckyKeyboardController(hid_device* dev_handle, const char* path);
~DuckyKeyboardController();
std::string GetDeviceLocation();
void SendColors
(
unsigned char* color_data,
unsigned int color_data_size
);
private:
hid_device* dev;
std::string location;
void SendInitialize();
void SendInitializeColorPacket();
unsigned int SendColorDataPacket
(
unsigned char packet_id,
unsigned char* color_data,
unsigned int color_size
);
void SendTerminateColorPacket();
};
@@ -1,84 +0,0 @@
#include "Detector.h"
#include "DuckyKeyboardController.h"
#include "RGBController.h"
#include "RGBController_DuckyKeyboard.h"
#include <vector>
#include <hidapi/hidapi.h>
/*-----------------------------------------------------*\
| Ducky vendor ID |
\*-----------------------------------------------------*/
#define DUCKY_VID 0x04D9
/*-----------------------------------------------------*\
| Keyboard product IDs |
\*-----------------------------------------------------*/
#define DUCKY_SHINE_7_ONE_2_RGB_PID 0x0348
#define DUCKY_ONE_2_RGB_TKL_PID 0x0356
typedef struct
{
unsigned short usb_vid;
unsigned short usb_pid;
unsigned char usb_interface;
const char * name;
} ducky_device;
#define DUCKY_NUM_DEVICES (sizeof(device_list) / sizeof(device_list[ 0 ]))
static const ducky_device device_list[] =
{
/*-----------------------------------------------------------------------------------------------------*\
| Keyboards |
\*-----------------------------------------------------------------------------------------------------*/
{ DUCKY_VID, DUCKY_SHINE_7_ONE_2_RGB_PID, 1, "Ducky Shine 7/Ducky One 2 RGB" },
{ DUCKY_VID, DUCKY_ONE_2_RGB_TKL_PID, 1, "Ducky One 2 RGB TKL" },
};
/******************************************************************************************\
* *
* DetectDuckyKeyboardControllers *
* *
* Tests the USB address to see if a Ducky RGB Keyboard controller exists there. *
* *
\******************************************************************************************/
void DetectDuckyKeyboardControllers(std::vector<RGBController*>& rgb_controllers)
{
hid_device_info* info;
hid_device* dev;
hid_init();
for(std::size_t device_idx = 0; device_idx < DUCKY_NUM_DEVICES; device_idx++)
{
dev = NULL;
info = hid_enumerate(device_list[device_idx].usb_vid, device_list[device_idx].usb_pid);
//Look for Ducky RGB Peripheral
while(info)
{
if((info->vendor_id == device_list[device_idx].usb_vid)
&&(info->product_id == device_list[device_idx].usb_pid)
&&(info->interface_number == device_list[device_idx].usb_interface))
{
dev = hid_open_path(info->path);
if( dev )
{
DuckyKeyboardController* controller = new DuckyKeyboardController(dev, info->path);
RGBController_DuckyKeyboard* rgb_controller = new RGBController_DuckyKeyboard(controller);
rgb_controller->name = device_list[device_idx].name;
rgb_controllers.push_back(rgb_controller);
}
}
info = info->next;
}
}
} /* DetectDuckyKeyboardControllers() */
REGISTER_DETECTOR("Ducky Keyboard", DetectDuckyKeyboardControllers);
@@ -1,279 +0,0 @@
/*-----------------------------------------*\
| RGBController_DuckyKeyboard.cpp |
| |
| Generic RGB Interface for Ducky RGB |
| keyboard devices |
| |
| Adam Honse (CalcProgrammer1) 7/4/2020 |
\*-----------------------------------------*/
#include "RGBController_DuckyKeyboard.h"
//0xFFFFFFFF indicates an unused entry in matrix
#define NA 0xFFFFFFFF
static unsigned int matrix_map[6][23] =
{ { 0, NA, 12, 18, 24, 30, NA, 42, 48, 54, 60, NA, 66, 72, 78, 84, 90, 96, 102, 108, 114, 120, 126 },
{ 1, 7, 13, 19, 25, 31, 37, 43, 49, 55, 61, NA, 67, 73, 85, NA, 91, 97, 103, 109, 115, 121, 127 },
{ 2, NA, 8, 14, 20, 26, NA, 32, 38, 44, 50, 56, 62, 68, 74, 86, 92, 98, 104, 110, 116, 122, 128 },
{ 3, NA, 9, 15, 21, 27, NA, 33, 39, 45, 51, 57, 63, 69, 87, NA, NA, NA, NA, 111, 117, 123, NA },
{ 4, NA, 16, 22, 28, 34, NA, 40, NA, 46, 52, 58, 64, 70, 82, NA, NA, 100, NA, 112, 118, 124, 131 },
{ 5, 11, 17, NA, NA, NA, NA, 41, NA, NA, NA, NA, 65, 77, 83, 89, 95, 101, 107, 113, NA, 125, NA } };
static const char* zone_names[] =
{
"Keyboard"
};
static zone_type zone_types[] =
{
ZONE_TYPE_MATRIX,
};
static const unsigned int zone_sizes[] =
{
132
};
static const char *led_names[] =
{
"Key: Escape",
"Key: `",
"Key: Tab",
"Key: Caps Lock",
"Key: Left Shift",
"Key: Left Control",
"Unused",
"Key: 1",
"Key: Q",
"Key: A",
"Unused",
"Key: Left Windows",
"Key: F1",
"Key: 2",
"Key: W",
"Key: S",
"Key: Z",
"Key: Left Alt",
"Key: F2",
"Key: 3",
"Key: E",
"Key: D",
"Key: X",
"Unused",
"Key: F3",
"Key: 4",
"Key: R",
"Key: F",
"Key: C",
"Unused",
"Key: F4",
"Key: 5",
"Key: T",
"Key: G",
"Key: V",
"Unused",
"Unused",
"Key: 6",
"Key: Y",
"Key: H",
"Key: B",
"Key: Space",
"Key: F5",
"Key: 7",
"Key: U",
"Key: J",
"Key: N",
"Unused",
"Key: F6",
"Key: 8",
"Key: I",
"Key: K",
"Key: M",
"Unused",
"Key: F7",
"Key: 9",
"Key: O",
"Key: L",
"Key: ,",
"Unused",
"Key: F8",
"Key: 0",
"Key: P",
"Key: ;",
"Key: .",
"Key: Right Alt",
"Key: F9",
"Key: -",
"Key: [",
"Key: '",
"Key: /",
"Unused",
"Key: F10",
"Key: =",
"Key: ]",
"Unused",
"Unused",
"Key: Right Windows",
"Key: F11",
"Unused",
"Unused",
"Unused",
"Key: Right Shift",
"Key: Right Fn",
"Key: F12",
"Key: Backspace",
"Key: \\ (ANSI)",
"Key: Enter",
"Unused",
"Key: Right Control",
"Key: Print Screen",
"Key: Insert",
"Key: Delete",
"Unused",
"Unused",
"Key: Left Arrow",
"Key: Scroll Lock",
"Key: Home",
"Key: End",
"Unused",
"Key: Up Arrow",
"Key: Down Arrow",
"Key: Pause/Break",
"Key: Page Up",
"Key: Page Down",
"Unused",
"Unused",
"Key: Right Arrow",
"Key: Calculator",
"Key: Num Lock",
"Key: Number Pad 7",
"Key: Number Pad 4",
"Key: Number Pad 1",
"Key: Number Pad 0",
"Key: Media Mute",
"Key: Number Pad /",
"Key: Number Pad 8",
"Key: Number Pad 5",
"Key: Number Pad 2",
"Unused",
"Key: Media Volume Down",
"Key: Number Pad *",
"Key: Number Pad 9",
"Key: Number Pad 6",
"Key: Number Pad 3",
"Key: Number Pad .",
"Key: Media Volume Up",
"Key: Number Pad -",
"Key: Number Pad +",
"Unused",
"Unused",
"Key: Number Pad Enter",
};
RGBController_DuckyKeyboard::RGBController_DuckyKeyboard(DuckyKeyboardController* ducky_ptr)
{
ducky = ducky_ptr;
name = "Ducky Keyboard Device";
type = DEVICE_TYPE_KEYBOARD;
description = "Ducky Keyboard Device";
location = ducky->GetDeviceLocation();
mode Direct;
Direct.name = "Direct";
Direct.value = 0xFFFF;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
SetupZones();
}
RGBController_DuckyKeyboard::~RGBController_DuckyKeyboard()
{
/*---------------------------------------------------------*\
| Delete the matrix map |
\*---------------------------------------------------------*/
for(unsigned int zone_index = 0; zone_index < zones.size(); zone_index++)
{
if(zones[zone_index].matrix_map != NULL)
{
delete zones[zone_index].matrix_map;
}
}
}
void RGBController_DuckyKeyboard::SetupZones()
{
/*---------------------------------------------------------*\
| Set up zones |
\*---------------------------------------------------------*/
unsigned int total_led_count = 0;
for(unsigned int zone_idx = 0; zone_idx < 1; zone_idx++)
{
zone new_zone;
new_zone.name = zone_names[zone_idx];
new_zone.type = zone_types[zone_idx];
new_zone.leds_min = zone_sizes[zone_idx];
new_zone.leds_max = zone_sizes[zone_idx];
new_zone.leds_count = zone_sizes[zone_idx];
new_zone.matrix_map = new matrix_map_type;
new_zone.matrix_map->height = 6;
new_zone.matrix_map->width = 23;
new_zone.matrix_map->map = (unsigned int *)&matrix_map;
zones.push_back(new_zone);
total_led_count += zone_sizes[zone_idx];
}
for(unsigned int led_idx = 0; led_idx < total_led_count; led_idx++)
{
led new_led;
new_led.name = led_names[led_idx];
leds.push_back(new_led);
}
SetupColors();
}
void RGBController_DuckyKeyboard::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_DuckyKeyboard::DeviceUpdateLEDs()
{
unsigned char colordata[155*3];
for(std::size_t color_idx = 0; color_idx < colors.size(); color_idx++)
{
colordata[(color_idx*3)+0] = RGBGetRValue(colors[color_idx]);
colordata[(color_idx*3)+1] = RGBGetGValue(colors[color_idx]);
colordata[(color_idx*3)+2] = RGBGetBValue(colors[color_idx]);
}
ducky->SendColors(colordata, sizeof(colordata));
}
void RGBController_DuckyKeyboard::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_DuckyKeyboard::UpdateSingleLED(int /*led*/)
{
DeviceUpdateLEDs();
}
void RGBController_DuckyKeyboard::SetCustomMode()
{
}
void RGBController_DuckyKeyboard::DeviceUpdateMode()
{
}
@@ -1,33 +0,0 @@
/*-----------------------------------------*\
| RGBController_DuckyKeyboard.h |
| |
| Generic RGB Interface for Ducky RGB |
| keyboard devices |
| |
| Adam Honse (CalcProgrammer1) 7/4/2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "DuckyKeyboardController.h"
class RGBController_DuckyKeyboard : public RGBController
{
public:
RGBController_DuckyKeyboard(DuckyKeyboardController* ducky_ptr);
~RGBController_DuckyKeyboard();
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
DuckyKeyboardController* ducky;
};
@@ -1,238 +0,0 @@
#include "Detector.h"
#include "RGBController.h"
#include "RGBController_E131.h"
#include "SettingsManager.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
#include <fcntl.h>
#include <string.h>
#include <fstream>
#include <iostream>
#include <string>
/******************************************************************************************\
* *
* DetectE131Controllers *
* *
* Detect devices supported by the E131 driver *
* *
\******************************************************************************************/
void DetectE131Controllers(std::vector<RGBController*> &rgb_controllers)
{
json e131_settings;
std::vector<std::vector<E131Device>> device_lists;
E131Device dev;
/*-------------------------------------------------*\
| Get E1.31 settings from settings manager |
\*-------------------------------------------------*/
e131_settings = ResourceManager::get()->GetSettingsManager()->GetSettings("Setting_E131Devices");
/*-------------------------------------------------*\
| If the E1.31 settings contains devices, process |
\*-------------------------------------------------*/
if(e131_settings.contains("devices"))
{
for(unsigned int device_idx = 0; device_idx < e131_settings["devices"].size(); device_idx++)
{
/*-------------------------------------------------*\
| Clear E1.31 device data |
\*-------------------------------------------------*/
dev.name = "";
dev.type = ZONE_TYPE_SINGLE;
dev.num_leds = 0;
dev.rgb_order = E131_RGB_ORDER_RBG;
dev.matrix_order = E131_MATRIX_ORDER_HORIZONTAL_TOP_LEFT;
dev.matrix_width = 0;
dev.matrix_height = 0;
dev.start_channel = 1;
dev.start_universe = 1;
if(e131_settings["devices"][device_idx].contains("name"))
{
dev.name = e131_settings["devices"][device_idx]["name"];
}
if(e131_settings["devices"][device_idx].contains("num_leds"))
{
dev.num_leds = e131_settings["devices"][device_idx]["num_leds"];
}
if(e131_settings["devices"][device_idx].contains("start_universe"))
{
dev.start_universe = e131_settings["devices"][device_idx]["start_universe"];
}
if(e131_settings["devices"][device_idx].contains("start_channel"))
{
dev.start_channel = e131_settings["devices"][device_idx]["start_channel"];
}
if(e131_settings["devices"][device_idx].contains("matrix_order"))
{
std::string matrix_order_val = e131_settings["devices"][device_idx]["matrix_order"];
if(matrix_order_val == "HORIZONTAL_TOP_LEFT")
{
dev.matrix_order = E131_MATRIX_ORDER_HORIZONTAL_TOP_LEFT;
}
else if(matrix_order_val == "HORIZONTAL_TOP_RIGHT")
{
dev.matrix_order = E131_MATRIX_ORDER_HORIZONTAL_TOP_RIGHT;
}
else if(matrix_order_val == "HORIZONTAL_BOTTOM_LEFT")
{
dev.matrix_order = E131_MATRIX_ORDER_HORIZONTAL_BOTTOM_LEFT;
}
else if(matrix_order_val == "HORIZONTAL_BOTTOM_RIGHT")
{
dev.matrix_order = E131_MATRIX_ORDER_HORIZONTAL_BOTTOM_RIGHT;
}
else if(matrix_order_val == "VERTICAL_TOP_LEFT")
{
dev.matrix_order = E131_MATRIX_ORDER_VERTICAL_TOP_LEFT;
}
else if(matrix_order_val == "VERTICAL_TOP_RIGHT")
{
dev.matrix_order = E131_MATRIX_ORDER_VERTICAL_TOP_RIGHT;
}
else if(matrix_order_val == "VERTICAL_BOTTOM_LEFT")
{
dev.matrix_order = E131_MATRIX_ORDER_VERTICAL_BOTTOM_LEFT;
}
else if(matrix_order_val == "VERTICAL_BOTTOM_RIGHT")
{
dev.matrix_order = E131_MATRIX_ORDER_VERTICAL_BOTTOM_RIGHT;
}
else
{
dev.matrix_order = e131_settings["devices"][device_idx]["matrix_order"];
}
}
if(e131_settings["devices"][device_idx].contains("rgb_order"))
{
std::string rgb_order_val = e131_settings["devices"][device_idx]["rgb_order"];
if(rgb_order_val == "RGB")
{
dev.rgb_order = E131_RGB_ORDER_RGB;
}
else if(rgb_order_val == "RBG")
{
dev.rgb_order = E131_RGB_ORDER_RBG;
}
else if(rgb_order_val == "GRB")
{
dev.rgb_order = E131_RGB_ORDER_GRB;
}
else if(rgb_order_val == "GBR")
{
dev.rgb_order = E131_RGB_ORDER_GBR;
}
else if(rgb_order_val == "BRG")
{
dev.rgb_order = E131_RGB_ORDER_BGR;
}
else if(rgb_order_val == "BGR")
{
dev.rgb_order = E131_RGB_ORDER_BGR;
}
else
{
dev.rgb_order = e131_settings["devices"][device_idx]["rgb_order"];
}
}
if(e131_settings["devices"][device_idx].contains("matrix_width"))
{
dev.matrix_width = e131_settings["devices"][device_idx]["matrix_width"];
}
if(e131_settings["devices"][device_idx].contains("matrix_height"))
{
dev.matrix_height = e131_settings["devices"][device_idx]["matrix_height"];
}
if(e131_settings["devices"][device_idx].contains("type"))
{
std::string type_val = e131_settings["devices"][device_idx]["type"];
if(type_val == "SINGLE")
{
dev.type = ZONE_TYPE_SINGLE;
}
else if(type_val == "LINEAR")
{
dev.type = ZONE_TYPE_LINEAR;
}
else if(type_val == "MATRIX")
{
dev.type = ZONE_TYPE_MATRIX;
}
else
{
dev.type = e131_settings["devices"][device_idx]["type"];
}
}
/*---------------------------------------------------------*\
| Determine whether to create a new list or add this device |
| to an existing list. A device is added to an existing |
| list if both devices share one or more universes for the |
| same output destination |
\*---------------------------------------------------------*/
bool device_added_to_existing_list = false;
for(unsigned int list_idx = 0; list_idx < device_lists.size(); list_idx++)
{
for(unsigned int device_idx = 0; device_idx < device_lists[list_idx].size(); device_idx++)
{
/*---------------------------------------------------------*\
| Check if any universes used by this new device exist in |
| the existing device. If so, add the new device to the |
| existing list. |
\*---------------------------------------------------------*/
if(dev.start_universe == device_lists[list_idx][device_idx].start_universe)
{
device_lists[list_idx].push_back(dev);
device_added_to_existing_list = true;
break;
}
}
if(device_added_to_existing_list)
{
break;
}
}
/*---------------------------------------------------------*\
| If the device did not overlap with existing devices, |
| create a new list for it |
\*---------------------------------------------------------*/
if(!device_added_to_existing_list)
{
std::vector<E131Device> new_list;
new_list.push_back(dev);
device_lists.push_back(new_list);
}
}
for(unsigned int list_idx = 0; list_idx < device_lists.size(); list_idx++)
{
RGBController_E131* rgb_controller;
rgb_controller = new RGBController_E131(device_lists[list_idx]);
rgb_controllers.push_back(rgb_controller);
}
}
} /* DetectE131Controllers() */
REGISTER_DETECTOR("E1.31", DetectE131Controllers);
@@ -1,424 +0,0 @@
/*-----------------------------------------*\
| RGBController_LEDStrip.cpp |
| |
| Generic RGB Interface for OpenAuraSDK |
| E1.31 Streaming ACN interface |
| |
| Adam Honse (CalcProgrammer1) 10/18/2019 |
\*-----------------------------------------*/
#include "RGBController_E131.h"
#include <e131.h>
#include <math.h>
using namespace std::chrono_literals;
RGBController_E131::RGBController_E131(std::vector<E131Device> device_list)
{
devices = device_list;
name = "E1.31 Device Group";
type = DEVICE_TYPE_LEDSTRIP;
description = "E1.31 Streaming ACN Device";
location = "E1.31: ";
/*-----------------------------------------*\
| If this controller only represents a |
| single device, use the device name for the|
| controller name |
\*-----------------------------------------*/
if(devices.size() == 1)
{
name = devices[0].name;
}
/*-----------------------------------------*\
| Append the destination address to the |
| location field (multicast only for now) |
\*-----------------------------------------*/
location += "Multicast, ";
/*-----------------------------------------*\
| Calculate universe list |
| Use this to fill in the location field |
\*-----------------------------------------*/
std::vector<unsigned int> universe_list;
for(unsigned int device_idx = 0; device_idx < devices.size(); device_idx++)
{
unsigned int total_universes = ceil( ( ( devices[device_idx].num_leds * 3 ) + devices[device_idx].start_channel ) / 512.0f );
for(unsigned int univ_idx = 0; univ_idx < total_universes; univ_idx++)
{
bool found = false;
for(unsigned int univ_list_idx = 0; univ_list_idx < universe_list.size(); univ_list_idx++)
{
if((devices[device_idx].start_universe + univ_idx) == universe_list[univ_list_idx])
{
found = true;
break;
}
}
if(!found)
{
universe_list.push_back(devices[device_idx].start_universe + univ_idx);
}
}
}
/*-----------------------------------------*\
| Append "Universe" and make plural if there|
| are multiple universes in use |
\*-----------------------------------------*/
location += "Universe";
if(universe_list.size() > 1)
{
location += "s ";
}
else
{
location += " ";
}
/*-----------------------------------------*\
| Append comma separated list of universes |
\*-----------------------------------------*/
for(unsigned int univ_list_idx = 0; univ_list_idx < universe_list.size(); univ_list_idx++)
{
location += std::to_string(universe_list[univ_list_idx]);
if(univ_list_idx < (universe_list.size() - 1))
{
location += ", ";
}
}
/*-----------------------------------------*\
| Set up modes |
\*-----------------------------------------*/
mode Direct;
Direct.name = "Direct";
Direct.value = 0;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
/*-----------------------------------------*\
| Create E1.31 socket |
\*-----------------------------------------*/
sockfd = e131_socket();
keepalive_delay = 0ms;
SetupZones();
for (std::size_t device_idx = 0; device_idx < devices.size(); device_idx++)
{
/*-----------------------------------------*\
| Update keepalive delay |
\*-----------------------------------------*/
if(devices[device_idx].keepalive_time > 0)
{
if(keepalive_delay.count() == 0 || keepalive_delay.count() > devices[device_idx].keepalive_time)
{
keepalive_delay = std::chrono::milliseconds(devices[device_idx].keepalive_time);
}
}
/*-----------------------------------------*\
| Add Universes |
\*-----------------------------------------*/
unsigned int total_universes = ceil( ( ( devices[device_idx].num_leds * 3 ) + devices[device_idx].start_channel ) / 512.0f );
for (unsigned int univ_idx = 0; univ_idx < total_universes; univ_idx++)
{
unsigned int universe = devices[device_idx].start_universe + univ_idx;
bool universe_exists = false;
for (std::size_t pkt_idx = 0; pkt_idx < packets.size(); pkt_idx++)
{
if(universes[pkt_idx] == universe)
{
universe_exists = true;
}
}
if(!universe_exists)
{
e131_packet_t packet;
e131_addr_t dest_addr;
e131_pkt_init(&packet, universe, 512);
e131_multicast_dest(&dest_addr, universe, E131_DEFAULT_PORT);
packets.push_back(packet);
universes.push_back(universe);
dest_addrs.push_back(dest_addr);
}
}
/*-----------------------------------------*\
| Generate matrix maps |
\*-----------------------------------------*/
if(devices[device_idx].type == ZONE_TYPE_MATRIX)
{
unsigned int led_idx = 0;
matrix_map_type * new_map = new matrix_map_type;
new_map->width = devices[device_idx].matrix_width;
new_map->height = devices[device_idx].matrix_height;
new_map->map = new unsigned int[devices[device_idx].matrix_width * devices[device_idx].matrix_height];
switch(devices[device_idx].matrix_order)
{
case E131_MATRIX_ORDER_HORIZONTAL_TOP_LEFT:
for(unsigned int y = 0; y < new_map->height; y++)
{
for(unsigned int x = 0; x < new_map->width; x++)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
case E131_MATRIX_ORDER_HORIZONTAL_TOP_RIGHT:
for(unsigned int y = 0; y < new_map->height; y++)
{
for(int x = new_map->width - 1; x >= 0; x--)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
case E131_MATRIX_ORDER_HORIZONTAL_BOTTOM_LEFT:
for(int y = new_map->height; y >= 0; y--)
{
for(unsigned int x = 0; x < new_map->width; x++)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
case E131_MATRIX_ORDER_HORIZONTAL_BOTTOM_RIGHT:
for(int y = new_map->height; y >= 0; y--)
{
for(int x = new_map->width - 1; x >= 0; x--)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
case E131_MATRIX_ORDER_VERTICAL_TOP_LEFT:
for(unsigned int x = 0; x < new_map->width; x++)
{
for(unsigned int y = 0; y < new_map->height; y++)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
case E131_MATRIX_ORDER_VERTICAL_TOP_RIGHT:
for(int x = new_map->width - 1; x >= 0; x--)
{
for(unsigned int y = 0; y < new_map->height; y++)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
case E131_MATRIX_ORDER_VERTICAL_BOTTOM_LEFT:
for(unsigned int x = 0; x < new_map->width; x++)
{
for(int y = new_map->height - 1; y >= 0; y--)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
case E131_MATRIX_ORDER_VERTICAL_BOTTOM_RIGHT:
for(int x = new_map->width - 1; x >= 0; x--)
{
for(int y = new_map->height - 1; y >= 0; y--)
{
new_map->map[(y * new_map->width) + x] = led_idx;
led_idx++;
}
}
break;
}
zones[device_idx].matrix_map = new_map;
}
}
if(keepalive_delay.count() > 0)
{
KeepaliveThread = new std::thread(&RGBController_E131::KeepaliveThreadFunction, this);
}
}
RGBController_E131::~RGBController_E131()
{
/*---------------------------------------------------------*\
| Delete the matrix map |
\*---------------------------------------------------------*/
for(unsigned int zone_index = 0; zone_index < zones.size(); zone_index++)
{
if(zones[zone_index].matrix_map != NULL)
{
if(zones[zone_index].matrix_map->map != NULL)
{
delete zones[zone_index].matrix_map->map;
}
delete zones[zone_index].matrix_map;
}
}
}
void RGBController_E131::SetupZones()
{
/*-----------------------------------------*\
| Add Zones |
\*-----------------------------------------*/
for(std::size_t zone_idx = 0; zone_idx < devices.size(); zone_idx++)
{
zone led_zone;
led_zone.name = devices[zone_idx].name;
led_zone.type = devices[zone_idx].type;
led_zone.leds_min = devices[zone_idx].num_leds;
led_zone.leds_max = devices[zone_idx].num_leds;
led_zone.leds_count = devices[zone_idx].num_leds;
led_zone.matrix_map = NULL;
zones.push_back(led_zone);
}
/*-----------------------------------------*\
| Add LEDs |
\*-----------------------------------------*/
for(std::size_t zone_idx = 0; zone_idx < zones.size(); zone_idx++)
{
for(std::size_t led_idx = 0; led_idx < zones[zone_idx].leds_count; led_idx++)
{
led new_led;
new_led.name = zones[zone_idx].name + " LED ";
new_led.name.append(std::to_string(led_idx));
leds.push_back(new_led);
}
}
SetupColors();
}
void RGBController_E131::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_E131::DeviceUpdateLEDs()
{
int color_idx = 0;
last_update_time = std::chrono::steady_clock::now();
for(std::size_t device_idx = 0; device_idx < devices.size(); device_idx++)
{
unsigned int total_universes = ceil( ( ( devices[device_idx].num_leds * 3 ) + devices[device_idx].start_channel ) / 512.0f );
unsigned int channel_idx = devices[device_idx].start_channel;
unsigned int led_idx = 0;
unsigned int rgb_idx = 0;
bool done = false;
for (unsigned int univ_idx = 0; univ_idx < total_universes; univ_idx++)
{
unsigned int universe = devices[device_idx].start_universe + univ_idx;
for(std::size_t packet_idx = 0; packet_idx < packets.size(); packet_idx++)
{
if(!done && (universes[packet_idx] == universe))
{
while(!done && (channel_idx <= 512))
{
switch(rgb_idx)
{
case 0:
packets[packet_idx].dmp.prop_val[channel_idx] = RGBGetRValue( colors[color_idx] );
rgb_idx = 1;
break;
case 1:
packets[packet_idx].dmp.prop_val[channel_idx] = RGBGetGValue( colors[color_idx] );
rgb_idx = 2;
break;
case 2:
packets[packet_idx].dmp.prop_val[channel_idx] = RGBGetBValue( colors[color_idx] );
rgb_idx = 0;
led_idx++;
color_idx++;
break;
}
if(led_idx >= devices[device_idx].num_leds)
{
done = true;
}
channel_idx++;
}
}
}
channel_idx = 1;
}
}
for(std::size_t packet_idx = 0; packet_idx < packets.size(); packet_idx++)
{
e131_send(sockfd, &packets[packet_idx], &dest_addrs[packet_idx]);
packets[packet_idx].frame.seq_number++;
}
}
void RGBController_E131::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_E131::UpdateSingleLED(int /*led*/)
{
DeviceUpdateLEDs();
}
void RGBController_E131::SetCustomMode()
{
}
void RGBController_E131::DeviceUpdateMode()
{
}
void RGBController_E131::KeepaliveThreadFunction()
{
while(1)
{
if((std::chrono::steady_clock::now() - last_update_time) > ( keepalive_delay * 0.95f ) )
{
UpdateLEDs();
}
std::this_thread::sleep_for(keepalive_delay / 2);
}
}
@@ -1,84 +0,0 @@
/*-----------------------------------------*\
| RGBController_E131.h |
| |
| Generic RGB Interface for OpenAuraSDK |
| E1.31 Streaming ACN interface |
| |
| Adam Honse (CalcProgrammer1) 10/18/2019 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include <e131.h>
#include <chrono>
#include <thread>
typedef unsigned int e131_rgb_order;
enum
{
E131_RGB_ORDER_RGB,
E131_RGB_ORDER_RBG,
E131_RGB_ORDER_GRB,
E131_RGB_ORDER_GBR,
E131_RGB_ORDER_BRG,
E131_RGB_ORDER_BGR
};
enum
{
E131_MATRIX_ORDER_HORIZONTAL_TOP_LEFT,
E131_MATRIX_ORDER_HORIZONTAL_TOP_RIGHT,
E131_MATRIX_ORDER_HORIZONTAL_BOTTOM_LEFT,
E131_MATRIX_ORDER_HORIZONTAL_BOTTOM_RIGHT,
E131_MATRIX_ORDER_VERTICAL_TOP_LEFT,
E131_MATRIX_ORDER_VERTICAL_TOP_RIGHT,
E131_MATRIX_ORDER_VERTICAL_BOTTOM_LEFT,
E131_MATRIX_ORDER_VERTICAL_BOTTOM_RIGHT
};
typedef unsigned int e131_matrix_order;
struct E131Device
{
std::string name;
unsigned int num_leds;
unsigned int start_universe;
unsigned int start_channel;
unsigned int keepalive_time;
e131_rgb_order rgb_order;
zone_type type;
unsigned int matrix_width;
unsigned int matrix_height;
e131_matrix_order matrix_order;
};
class RGBController_E131 : public RGBController
{
public:
RGBController_E131(std::vector<E131Device> device_list);
~RGBController_E131();
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
void KeepaliveThreadFunction();
private:
std::vector<E131Device> devices;
std::vector<e131_packet_t> packets;
std::vector<e131_addr_t> dest_addrs;
std::vector<unsigned int> universes;
int sockfd;
std::thread * KeepaliveThread;
std::chrono::milliseconds keepalive_delay;
std::chrono::time_point<std::chrono::steady_clock> last_update_time;
};
-130
View File
@@ -1,130 +0,0 @@
/*-------------------------------------------------------------------*\
| EKController.cpp |
| |
| Driver for EK Loop Connect |
| |
| Chris M (Dr_No) 16th Jul 2020 |
| |
\*-------------------------------------------------------------------*/
#include "EKController.h"
static unsigned char colour_mode_data[][16] =
{
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x01, 0x00, 0xFF, 0x64}, // Static
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x02, 0x00, 0xFF, 0x64}, // Breathing
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x03, 0xFF, 0xFF, 0x64}, // Fading
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x04, 0x00, 0xFF, 0x64}, // Marquee
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x05, 0x00, 0xFF, 0x64}, // Covering Marquee
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x06, 0x00, 0xFF, 0x64}, // Pulse
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x07, 0x00, 0xFF, 0x64}, // Wave
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x08, 0x00, 0xFF, 0x64}, // Alternating
{ 0x10, 0x12, 0x29, 0xAA, 0x01, 0x10, 0xA2, 0x60,
0x00, 0x10, 0x20, 0x01, 0x09, 0x00, 0xFF, 0x64}, // Candle
};
static unsigned char speed_mode_data[][9] =
{
{ 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 }, // Static
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 }, // Breathing
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 }, // Fading
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 }, // Marquee
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 }, // Covering Marquee
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 }, // Pulse
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 }, // Wave
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 }, // Alternating
{ 0x00, 0x0C, 0x19, 0x25, 0x32, 0x3E, 0x4B, 0x57, 0x64 } // Candle
};
EKController::EKController(hid_device* dev_handle, wchar_t *_vendor, wchar_t *_device_name, char *_path)
{
std::size_t tmp_size = wcslen(_vendor);
dev = dev_handle;
for(std::size_t i = 0; (i < tmp_size) && (i < EK_DEVICE_NAME_SIZE); i++)
{
device_name[i] = (char)_vendor[i];
}
for(std::size_t j = 0; (j < wcslen(_vendor)) && ((tmp_size + j) < EK_DEVICE_NAME_SIZE); j++)
{
device_name[tmp_size + j] = (char)_device_name[j];
}
location = _path;
current_mode = EK_MODE_STATIC;
current_speed = EK_SPEED_NORMAL;
}
EKController::~EKController()
{
if(dev)
{
hid_close(dev);
}
}
char* EKController::GetDeviceName()
{
return device_name;
}
char* EKController::GetSerial()
{
return serial;
}
std::string EKController::GetLocation()
{
return location;
}
void EKController::SetMode(unsigned char mode, unsigned char speed)
{
current_mode = mode;
current_speed = speed;
SendUpdate();
}
void EKController::SetColor(unsigned char red, unsigned char green, unsigned char blue)
{
current_red = red;
current_green = green;
current_blue = blue;
SendUpdate();
}
void EKController::SendUpdate()
{
unsigned char buffer[EK_PACKET_LENGTH] = { 0x00 };
int buffer_size = (sizeof(buffer) / sizeof(buffer[0]));
for(std::size_t i = 0; i < EK_COLOUR_MODE_DATA_SIZE; i++)
{
buffer[i] = colour_mode_data[current_mode][i];
}
//Set the relevant colour info
buffer[EK_RED_BYTE] = current_red;
buffer[EK_GREEN_BYTE] = current_green;
buffer[EK_BLUE_BYTE] = current_blue;
buffer[EK_SPEED_BYTE] = speed_mode_data[current_mode][current_speed];
buffer[10] = 0x10;
buffer[47] = 0xFF;
buffer[48] = 0x00;
hid_write(dev, buffer, buffer_size);
}
-84
View File
@@ -1,84 +0,0 @@
/*-------------------------------------------------------------------*\
| EKController.h |
| |
| Driver for EK Loop Connect |
| |
| Chris M (Dr_No) 16th Jul 2020 |
| |
\*-------------------------------------------------------------------*/
#ifndef EKCONTROLLER_H
#define EKCONTROLLER_H
#include <string>
#include <hidapi/hidapi.h>
#define EK_COLOUR_MODE_DATA_SIZE (sizeof(colour_mode_data[0]) / sizeof(colour_mode_data[0][0]))
#define EK_DEVICE_NAME_SIZE (sizeof(device_name) / sizeof(device_name[ 0 ]))
#define EK_PACKET_LENGTH 0x3F
enum
{
EK_MODE_BYTE = 12,
EK_SPEED_BYTE = 14,
EK_RED_BYTE = 16,
EK_GREEN_BYTE = 17,
EK_BLUE_BYTE = 18
};
enum
{
EK_MODE_STATIC = 0x00, //Static Mode
EK_MODE_BREATHING = 0x01, //Breathing Mode
EK_MODE_FADING = 0x02, //Fading Mode
EK_MODE_MARQUEE = 0x03, //Marquee Mode
EK_MODE_COVERING_MARQUEE = 0x04, //Covering Marquee Mode
EK_MODE_PULSE = 0x05, //Pulse Mode
EK_MODE_SPECTRUM_WAVE = 0x06, //Spectrum Wave Mode
EK_MODE_ALTERNATING = 0x07, //Alternating Mode
EK_MODE_CANDLE = 0x08 //Candle Mode
};
enum
{
EK_SPEED_SLOWEST = 0x00, // Slowest speed
EK_SPEED_SLOWER = 0x01, // Slower speed
EK_SPEED_SLOW = 0x02, // Slow speed
EK_SPEED_SLOWISH = 0x03, // Slowish speed
EK_SPEED_NORMAL = 0x04, // Normal speed
EK_SPEED_FASTISH = 0x05, // Fastish speed
EK_SPEED_FAST = 0x06, // Fast speed
EK_SPEED_FASTER = 0x07, // Faster speed
EK_SPEED_FASTEST = 0x08, // Fastest speed
};
class EKController
{
public:
EKController(hid_device* dev_handle, wchar_t *_vendor, wchar_t *_device_name, char *_path);
~EKController();
char* GetDeviceName();
char* GetSerial();
std::string GetLocation();
void SetMode(unsigned char mode, unsigned char speed);
void SetColor(unsigned char red, unsigned char green, unsigned char blue);
private:
char device_name[32];
char serial[32];
std::string location;
hid_device* dev;
unsigned char current_mode;
unsigned char current_speed;
unsigned char current_red;
unsigned char current_green;
unsigned char current_blue;
void SendUpdate();
};
#endif // EKCONTROLLER_H
@@ -1,67 +0,0 @@
#include "Detector.h"
#include "EKController.h"
#include "RGBController.h"
#include "RGBController_EKController.h"
#include <hidapi/hidapi.h>
#define EK_VID 0x0483
#define EK_LOOP_CONNECT 0x5750
#define EK_NUM_DEVICES (sizeof(ek_pids) / sizeof(ek_pids[ 0 ]))
enum
{
EK_PID = 0,
EK_INTERFACE = 1
};
static const unsigned int ek_pids[][2] =
{ // PID, Interface
{ EK_LOOP_CONNECT, 0x00 } //EK Loop Connect
};
/******************************************************************************************\
* *
* DetectEKControllers *
* *
* Tests the USB address to see if any EK Controllers exists there. *
* *
\******************************************************************************************/
void DetectEKControllers(std::vector<RGBController*>& rgb_controllers)
{
hid_device_info* info = NULL;
//Look for the passed in cm_pids
hid_init();
info = hid_enumerate(EK_VID, 0x0);
while(info)
{
hid_device* dev = NULL;
if(info->vendor_id == EK_VID)
{
for(unsigned int ek_pid_idx = 0; ek_pid_idx < EK_NUM_DEVICES; ek_pid_idx++)
{
if((info->product_id == ek_pids[ek_pid_idx][EK_PID])
&&(info->interface_number == ek_pids[ek_pid_idx][EK_INTERFACE]))
{
dev = hid_open_path(info->path);
break;
}
}
}
if(dev)
{
EKController* controller = new EKController(dev, info->manufacturer_string, info->product_string, info->path);
RGBController_EKController* rgb_controller = new RGBController_EKController(controller);
rgb_controllers.push_back(rgb_controller);
}
info = info->next;
}
hid_free_enumeration(info);
} /* DetectEKControllers() */
REGISTER_DETECTOR("EK", DetectEKControllers);
@@ -1,174 +0,0 @@
/*-------------------------------------------------------------------*\
| RGBController_EKController.cpp |
| |
| Driver for EK Loop Connect |
| |
| Chris M (Dr_No) 16th Jul 2020 |
| |
\*-------------------------------------------------------------------*/
#include "RGBController_EKController.h"
RGBController_EKController::RGBController_EKController(EKController* _dev)
{
EK_dev = _dev;
name = EK_dev->GetDeviceName();
type = DEVICE_TYPE_LEDSTRIP;
description = EK_dev->GetDeviceName();
version = "1.0";
serial = EK_dev->GetSerial();
location = EK_dev->GetLocation();
mode Static;
Static.name = "Static";
Static.value = EK_MODE_STATIC;
Static.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Static.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Static);
mode Breathing;
Breathing.name = "Breathing";
Breathing.value = EK_MODE_BREATHING;
Breathing.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_PER_LED_COLOR;
Breathing.speed_min = EK_SPEED_SLOWEST;
Breathing.speed_max = EK_SPEED_FASTEST;
Breathing.color_mode = MODE_COLORS_PER_LED;
Breathing.speed = EK_SPEED_NORMAL;
modes.push_back(Breathing);
mode Fading;
Fading.name = "Fading";
Fading.value = EK_MODE_FADING;
Fading.flags = MODE_FLAG_HAS_SPEED;
Fading.speed_min = EK_SPEED_SLOWEST;
Fading.speed_max = EK_SPEED_FASTEST;
Fading.color_mode = MODE_COLORS_NONE;
Fading.speed = EK_SPEED_NORMAL;
modes.push_back(Fading);
mode Marquee;
Marquee.name = "Marquee";
Marquee.value = EK_MODE_MARQUEE;
Marquee.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_PER_LED_COLOR;
Marquee.speed_min = EK_SPEED_SLOWEST;
Marquee.speed_max = EK_SPEED_FASTEST;
Marquee.color_mode = MODE_COLORS_PER_LED;
Marquee.speed = EK_SPEED_NORMAL;
modes.push_back(Marquee);
mode Covering_Marquee;
Covering_Marquee.name = "Covering Marquee";
Covering_Marquee.value = EK_MODE_COVERING_MARQUEE;
Covering_Marquee.flags = MODE_FLAG_HAS_SPEED;
Covering_Marquee.speed_min = EK_SPEED_SLOWEST;
Covering_Marquee.speed_max = EK_SPEED_FASTEST;
Covering_Marquee.color_mode = MODE_COLORS_NONE;
Covering_Marquee.speed = EK_SPEED_NORMAL;
modes.push_back(Covering_Marquee);
mode Pulse;
Pulse.name = "Pulse";
Pulse.value = EK_MODE_PULSE;
Pulse.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_PER_LED_COLOR;
Pulse.speed_min = EK_SPEED_SLOWEST;
Pulse.speed_max = EK_SPEED_FASTEST;
Pulse.color_mode = MODE_COLORS_PER_LED;
Pulse.speed = EK_SPEED_NORMAL;
modes.push_back(Pulse);
mode Spectrum_Wave;
Spectrum_Wave.name = "Spectrum_Wave";
Spectrum_Wave.value = EK_MODE_SPECTRUM_WAVE;
Spectrum_Wave.flags = MODE_FLAG_HAS_SPEED;
Spectrum_Wave.speed_min = EK_SPEED_SLOWEST;
Spectrum_Wave.speed_max = EK_SPEED_FASTEST;
Spectrum_Wave.color_mode = MODE_COLORS_NONE;
Spectrum_Wave.speed = EK_SPEED_NORMAL;
modes.push_back(Spectrum_Wave);
mode Alternating;
Alternating.name = "Alternating";
Alternating.value = EK_MODE_ALTERNATING;
Alternating.flags = MODE_FLAG_HAS_SPEED;
Alternating.speed_min = EK_SPEED_SLOWEST;
Alternating.speed_max = EK_SPEED_FASTEST;
Alternating.color_mode = MODE_COLORS_PER_LED;
Alternating.speed = EK_SPEED_NORMAL;
modes.push_back(Alternating);
mode Candle;
Candle.name = "Candle";
Candle.value = EK_MODE_CANDLE;
Candle.flags = MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_PER_LED_COLOR;
Candle.speed_min = EK_SPEED_SLOWEST;
Candle.speed_max = EK_SPEED_FASTEST;
Candle.color_mode = MODE_COLORS_PER_LED;
Candle.speed = EK_SPEED_NORMAL;
modes.push_back(Candle);
SetupZones();
}
RGBController_EKController::~RGBController_EKController()
{
}
void RGBController_EKController::SetupZones()
{
zone EK_zone;
EK_zone.name = "Loop Connect";
EK_zone.type = ZONE_TYPE_SINGLE;
EK_zone.leds_min = 1;
EK_zone.leds_max = 1;
EK_zone.leds_count = 1;
EK_zone.matrix_map = NULL;
zones.push_back(EK_zone);
led EK_led;
EK_led.name = "EK LED";
leds.push_back(EK_led);
SetupColors();
}
void RGBController_EKController::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| ToDo |
\*---------------------------------------------------------*/
}
void RGBController_EKController::DeviceUpdateLEDs()
{
unsigned char red = RGBGetRValue(colors[0]);
unsigned char grn = RGBGetGValue(colors[0]);
unsigned char blu = RGBGetBValue(colors[0]);
EK_dev->SetColor(red, grn, blu);
}
void RGBController_EKController::UpdateZoneLEDs(int zone)
{
RGBColor color = colors[zone];
unsigned char red = RGBGetRValue(color);
unsigned char grn = RGBGetGValue(color);
unsigned char blu = RGBGetBValue(color);
EK_dev->SetColor(red, grn, blu);
}
void RGBController_EKController::UpdateSingleLED(int led)
{
UpdateZoneLEDs(led);
}
void RGBController_EKController::SetCustomMode()
{
active_mode = 0;
}
void RGBController_EKController::DeviceUpdateMode()
{
EK_dev->SetMode(modes[active_mode].value, modes[active_mode].speed);
}
@@ -1,35 +0,0 @@
/*-------------------------------------------------------------------*\
| RGBController_EKController.h |
| |
| Driver for EK Loop Connect |
| |
| Chris M (Dr_No) 16th Jul 2020 |
| |
\*-------------------------------------------------------------------*/
#ifndef RGBCONTROLLER_EKCONTROLLER_H
#define RGBCONTROLLER_EKCONTROLLER_H
#include "RGBController.h"
#include "Controllers/EKController/EKController.h"
class RGBController_EKController : public RGBController
{
public:
RGBController_EKController(EKController *_dev);
~RGBController_EKController();
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
EKController* EK_dev;
};
#endif // RGBCONTROLLER_EKCONTROLLER_H
@@ -1,97 +0,0 @@
#include "Detector.h"
#include "EVGAGPUv1Controller.h"
#include "EVGAGPUv2Controller.h"
#include "RGBController.h"
#include "RGBController_EVGAGPUv1.h"
#include "RGBController_EVGAGPUv2.h"
#include "i2c_smbus.h"
#include "pci_ids.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
enum
{
EVGA_RGB_V1,
EVGA_RGB_V2,
};
typedef struct
{
int pci_vendor;
int pci_device;
int pci_subsystem_vendor;
int pci_subsystem_device;
int gpu_rgb_version;
const char * name;
} gpu_pci_device;
#define GPU_NUM_DEVICES (sizeof(device_list) / sizeof(device_list[ 0 ]))
static const gpu_pci_device device_list[] =
{
{ NVIDIA_VEN, NVIDIA_GTX1070_DEV, EVGA_SUB_VEN, EVGA_GTX1070_FTW_SUB_DEV, EVGA_RGB_V1, "EVGA GeForce GTX 1070 FTW" },
{ NVIDIA_VEN, NVIDIA_RTX2070_OC_DEV, EVGA_SUB_VEN, EVGA_RTX2070_XC_OC_SUB_DEV, EVGA_RGB_V2, "EVGA GeForce RTX 2070 XC OC" },
{ NVIDIA_VEN, NVIDIA_RTX2070S_DEV, EVGA_SUB_VEN, EVGA_RTX2070S_XC_ULTRA_SUB_DEV, EVGA_RGB_V2, "EVGA GeForce RTX 2070 SUPER XC ULTRA" },
{ NVIDIA_VEN, NVIDIA_RTX2080_DEV, EVGA_SUB_VEN, EVGA_RTX2080_XC_GAMING_SUB_DEV, EVGA_RGB_V2, "EVGA GeForce RTX 2080 XC GAMING" },
};
/******************************************************************************************\
* *
* DetectEVGAGPUControllers *
* *
* Detect EVGA GPU controllers on the enumerated I2C busses at address 0x49. *
* *
* bus - pointer to i2c_smbus_interface where EVGA GPU device is connected *
* dev - I2C address of EVGA GPU device *
* *
\******************************************************************************************/
void DetectEVGAGPUControllers(std::vector<i2c_smbus_interface*>& busses, std::vector<RGBController*>& rgb_controllers)
{
for (unsigned int bus = 0; bus < busses.size(); bus++)
{
for(unsigned int dev_idx = 0; dev_idx < GPU_NUM_DEVICES; dev_idx++)
{
if (busses[bus]->port_id != 1)
{
break;
}
if(busses[bus]->pci_vendor == device_list[dev_idx].pci_vendor &&
busses[bus]->pci_device == device_list[dev_idx].pci_device &&
busses[bus]->pci_subsystem_vendor == device_list[dev_idx].pci_subsystem_vendor &&
busses[bus]->pci_subsystem_device == device_list[dev_idx].pci_subsystem_device)
{
switch(device_list[dev_idx].gpu_rgb_version)
{
case EVGA_RGB_V1:
{
EVGAGPUv1Controller* new_controller;
RGBController_EVGAGPUv1* new_rgbcontroller;
new_controller = new EVGAGPUv1Controller(busses[bus], 0x49);
new_rgbcontroller = new RGBController_EVGAGPUv1(new_controller);
new_rgbcontroller->name = device_list[dev_idx].name;
rgb_controllers.push_back(new_rgbcontroller);
}
break;
case EVGA_RGB_V2:
{
EVGAGPUv2Controller* new_controller;
RGBController_EVGAGPUv2* new_rgbcontroller;
new_controller = new EVGAGPUv2Controller(busses[bus], 0x49);
new_rgbcontroller = new RGBController_EVGAGPUv2(new_controller);
new_rgbcontroller->name = device_list[dev_idx].name;
rgb_controllers.push_back(new_rgbcontroller);
}
break;
}
}
}
}
} /* DetectEVGAGPUControllers() */
REGISTER_I2C_DETECTOR("EVGA GPU", DetectEVGAGPUControllers);
@@ -1,58 +0,0 @@
/*-----------------------------------------*\
| EVGAGPUv1Controller.cpp |
| |
| Driver for EVGA GPU RGB V1 (Pascal) |
| lighting controller |
| |
| Adam Honse (CalcProgrammer1) 9/11/2020 |
\*-----------------------------------------*/
#include "EVGAGPUv1Controller.h"
EVGAGPUv1Controller::EVGAGPUv1Controller(i2c_smbus_interface* bus, evga_dev_id dev)
{
this->bus = bus;
this->dev = dev;
}
EVGAGPUv1Controller::~EVGAGPUv1Controller()
{
}
std::string EVGAGPUv1Controller::GetDeviceLocation()
{
std::string return_string(bus->device_name);
char addr[5];
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
}
unsigned char EVGAGPUv1Controller::GetRed()
{
return(bus->i2c_smbus_read_byte_data(dev, EVGA_GPU_V1_REG_RED));
}
unsigned char EVGAGPUv1Controller::GetGreen()
{
return(bus->i2c_smbus_read_byte_data(dev, EVGA_GPU_V1_REG_GREEN));
}
unsigned char EVGAGPUv1Controller::GetBlue()
{
return(bus->i2c_smbus_read_byte_data(dev, EVGA_GPU_V1_REG_BLUE));
}
void EVGAGPUv1Controller::SetColor(unsigned char red, unsigned char green, unsigned char blue)
{
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V1_REG_RED, red);
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V1_REG_GREEN, green);
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V1_REG_BLUE, blue);
}
void EVGAGPUv1Controller::SetMode(unsigned char mode)
{
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V1_REG_MODE, mode);
}
@@ -1,52 +0,0 @@
/*-----------------------------------------*\
| EVGAGPUv1Controller.h |
| |
| Definitions and types for EVGA GPU RGB |
| V1 (Pascal) lighting controller |
| |
| Adam Honse (CalcProgrammer1) 9/11/2020 |
\*-----------------------------------------*/
#include <string>
#include "i2c_smbus.h"
#pragma once
typedef unsigned char evga_dev_id;
enum
{
EVGA_GPU_V1_REG_MODE = 0x0C,
EVGA_GPU_V1_REG_RED = 0x09,
EVGA_GPU_V1_REG_GREEN = 0x0A,
EVGA_GPU_V1_REG_BLUE = 0x0B,
};
enum
{
EVGA_GPU_V1_MODE_OFF = 0x00,
EVGA_GPU_V1_MODE_CUSTOM = 0x01,
EVGA_GPU_V1_MODE_RAINBOW = 0x02,
EVGA_GPU_V1_MODE_BREATHING = 0x05,
};
class EVGAGPUv1Controller
{
public:
EVGAGPUv1Controller(i2c_smbus_interface* bus, evga_dev_id dev);
~EVGAGPUv1Controller();
std::string GetDeviceLocation();
unsigned char GetRed();
unsigned char GetGreen();
unsigned char GetBlue();
void SetColor(unsigned char red, unsigned char green, unsigned char blue);
void SetMode(unsigned char mode);
private:
i2c_smbus_interface* bus;
evga_dev_id dev;
};
@@ -1,68 +0,0 @@
/*-----------------------------------------*\
| EVGAGPUv2Controller.cpp |
| |
| Driver for EVGA GPU RGB V2 (Turing) |
| lighting controller |
| |
| Adam Honse (CalcProgrammer1) 9/13/2020 |
\*-----------------------------------------*/
#include "EVGAGPUv2Controller.h"
EVGAGPUv2Controller::EVGAGPUv2Controller(i2c_smbus_interface* bus, evga_dev_id dev)
{
this->bus = bus;
this->dev = dev;
}
EVGAGPUv2Controller::~EVGAGPUv2Controller()
{
}
std::string EVGAGPUv2Controller::GetDeviceLocation()
{
std::string return_string(bus->device_name);
char addr[5];
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
}
unsigned char EVGAGPUv2Controller::GetRed()
{
return(bus->i2c_smbus_read_byte_data(dev, EVGA_GPU_V2_REG_COLOR_A_RED));
}
unsigned char EVGAGPUv2Controller::GetGreen()
{
return(bus->i2c_smbus_read_byte_data(dev, EVGA_GPU_V2_REG_COLOR_A_GREEN));
}
unsigned char EVGAGPUv2Controller::GetBlue()
{
return(bus->i2c_smbus_read_byte_data(dev, EVGA_GPU_V2_REG_COLOR_A_BLUE));
}
void EVGAGPUv2Controller::SetColor(unsigned char red, unsigned char green, unsigned char blue)
{
bus->i2c_smbus_write_byte_data(dev, 0x0E, 0xE5);
bus->i2c_smbus_write_byte_data(dev, 0x0E, 0xE9);
bus->i2c_smbus_write_byte_data(dev, 0x0E, 0xF5);
bus->i2c_smbus_write_byte_data(dev, 0x0E, 0xF9);
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V2_REG_COLOR_A_RED, red);
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V2_REG_COLOR_A_GREEN, green);
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V2_REG_COLOR_A_BLUE, blue);
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V2_REG_COLOR_A_BRIGHTNESS, 0x64);
bus->i2c_smbus_write_byte_data(dev, 0x08, 0x01);
bus->i2c_smbus_write_byte_data(dev, 0x0E, 0xF0);
bus->i2c_smbus_write_byte_data(dev, 0x0E, 0xE0);
}
void EVGAGPUv2Controller::SetMode(unsigned char mode)
{
bus->i2c_smbus_write_byte_data(dev, EVGA_GPU_V2_REG_MODE, mode);
}
@@ -1,57 +0,0 @@
/*-----------------------------------------*\
| EVGAGPUv2Controller.h |
| |
| Definitions and types for EVGA GPU RGB |
| V2 (Turing) lighting controller |
| |
| Adam Honse (CalcProgrammer1) 9/13/2020 |
\*-----------------------------------------*/
#include <string>
#include "i2c_smbus.h"
#pragma once
typedef unsigned char evga_dev_id;
enum
{
EVGA_GPU_V2_REG_MODE = 0x60,
EVGA_GPU_V2_REG_COLOR_A_RED = 0x6C,
EVGA_GPU_V2_REG_COLOR_A_GREEN = 0x6D,
EVGA_GPU_V2_REG_COLOR_A_BLUE = 0x6E,
EVGA_GPU_V2_REG_COLOR_A_BRIGHTNESS = 0x6F,
EVGA_GPU_V2_REG_COLOR_B_RED = 0x70,
EVGA_GPU_V2_REG_COLOR_B_GREEN = 0x71,
EVGA_GPU_V2_REG_COLOR_B_BLUE = 0x72,
EVGA_GPU_V2_REG_COLOR_B_BRIGHTNESS = 0x73,
};
enum
{
EVGA_GPU_V2_MODE_OFF = 0x00,
EVGA_GPU_V2_MODE_CUSTOM = 0x01,
EVGA_GPU_V2_MODE_RAINBOW = 0x0F,
EVGA_GPU_V2_MODE_BREATHING = 0x22,
};
class EVGAGPUv2Controller
{
public:
EVGAGPUv2Controller(i2c_smbus_interface* bus, evga_dev_id dev);
~EVGAGPUv2Controller();
std::string GetDeviceLocation();
unsigned char GetRed();
unsigned char GetGreen();
unsigned char GetBlue();
void SetColor(unsigned char red, unsigned char green, unsigned char blue);
void SetMode(unsigned char mode);
private:
i2c_smbus_interface* bus;
evga_dev_id dev;
};
@@ -1,118 +0,0 @@
/*-----------------------------------------*\
| RGBController_EVGAGPUv1.cpp |
| |
| Generic RGB Interface for OpenRGB EVGA |
| GPU V1 (Pascal) Driver |
| |
| Adam Honse (CalcProgrammer1) 9/11/2020 |
\*-----------------------------------------*/
#include "RGBController_EVGAGPUv1.h"
RGBController_EVGAGPUv1::RGBController_EVGAGPUv1(EVGAGPUv1Controller* evga_ptr)
{
evga = evga_ptr;
name = "EVGA GPU";
description = "EVGA RGB v1 GPU Device";
location = evga->GetDeviceLocation();
type = DEVICE_TYPE_GPU;
mode Off;
Off.name = "Off";
Off.value = EVGA_GPU_V1_MODE_OFF;
Off.flags = 0;
Off.color_mode = MODE_COLORS_NONE;
modes.push_back(Off);
mode Direct;
Direct.name = "Direct";
Direct.value = EVGA_GPU_V1_MODE_CUSTOM;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
mode Rainbow;
Rainbow.name = "Rainbow";
Rainbow.value = EVGA_GPU_V1_MODE_RAINBOW;
Rainbow.flags = 0;
Rainbow.color_mode = MODE_COLORS_NONE;
modes.push_back(Rainbow);
mode Breathing;
Breathing.name = "Breathing";
Breathing.value = EVGA_GPU_V1_MODE_BREATHING;
Breathing.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Breathing.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Breathing);
SetupZones();
// Initialize active mode
active_mode = 0;
}
void RGBController_EVGAGPUv1::SetupZones()
{
/*---------------------------------------------------------*\
| This device only has one LED, so create a single zone and |
| LED for it |
\*---------------------------------------------------------*/
zone* new_zone = new zone();
led* new_led = new led();
new_zone->name = "GPU Zone";
new_zone->type = ZONE_TYPE_SINGLE;
new_zone->leds_min = 1;
new_zone->leds_max = 1;
new_zone->leds_count = 1;
new_zone->matrix_map = NULL;
new_led->name = "GPU LED";
/*---------------------------------------------------------*\
| Push the zone and LED on to device vectors |
\*---------------------------------------------------------*/
leds.push_back(*new_led);
zones.push_back(*new_zone);
SetupColors();
}
void RGBController_EVGAGPUv1::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_EVGAGPUv1::DeviceUpdateLEDs()
{
RGBColor color = colors[0];
unsigned char red = RGBGetRValue(color);
unsigned char grn = RGBGetGValue(color);
unsigned char blu = RGBGetBValue(color);
evga->SetColor(red, grn, blu);
}
void RGBController_EVGAGPUv1::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_EVGAGPUv1::UpdateSingleLED(int /*led*/)
{
DeviceUpdateLEDs();
}
void RGBController_EVGAGPUv1::SetCustomMode()
{
active_mode = 1;
}
void RGBController_EVGAGPUv1::DeviceUpdateMode()
{
evga->SetMode((unsigned char)modes[(unsigned int)active_mode].value);
}
@@ -1,33 +0,0 @@
/*-----------------------------------------*\
| RGBController_EVGAGPUv1.h |
| |
| Generic RGB Interface for OpenRGB |
| EVGA GPU RGB V1 (Pascal) Driver |
| |
| Adam Honse (CalcProgrammer1) 9/11/2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "EVGAGPUv1Controller.h"
class RGBController_EVGAGPUv1 : public RGBController
{
public:
RGBController_EVGAGPUv1(EVGAGPUv1Controller* evga_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
EVGAGPUv1Controller* evga;
};
@@ -1,118 +0,0 @@
/*-----------------------------------------*\
| RGBController_EVGAGPUv2.cpp |
| |
| Generic RGB Interface for OpenRGB EVGA |
| GPU V2 (Pascal) Driver |
| |
| Adam Honse (CalcProgrammer1) 9/13/2020 |
\*-----------------------------------------*/
#include "RGBController_EVGAGPUv2.h"
RGBController_EVGAGPUv2::RGBController_EVGAGPUv2(EVGAGPUv2Controller* evga_ptr)
{
evga = evga_ptr;
name = "EVGA GPU";
description = "EVGA RGB v2 GPU Device";
location = evga->GetDeviceLocation();
type = DEVICE_TYPE_GPU;
mode Off;
Off.name = "Off";
Off.value = EVGA_GPU_V2_MODE_OFF;
Off.flags = 0;
Off.color_mode = MODE_COLORS_NONE;
modes.push_back(Off);
mode Direct;
Direct.name = "Direct";
Direct.value = EVGA_GPU_V2_MODE_CUSTOM;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
// mode Rainbow;
// Rainbow.name = "Rainbow";
// Rainbow.value = EVGA_GPU_V2_MODE_RAINBOW;
// Rainbow.flags = 0;
// Rainbow.color_mode = MODE_COLORS_NONE;
// modes.push_back(Rainbow);
// mode Breathing;
// Breathing.name = "Breathing";
// Breathing.value = EVGA_GPU_V2_MODE_BREATHING;
// Breathing.flags = MODE_FLAG_HAS_PER_LED_COLOR;
// Breathing.color_mode = MODE_COLORS_PER_LED;
// modes.push_back(Breathing);
SetupZones();
// Initialize active mode
active_mode = 0;
}
void RGBController_EVGAGPUv2::SetupZones()
{
/*---------------------------------------------------------*\
| This device only has one LED, so create a single zone and |
| LED for it |
\*---------------------------------------------------------*/
zone* new_zone = new zone();
led* new_led = new led();
new_zone->name = "GPU Zone";
new_zone->type = ZONE_TYPE_SINGLE;
new_zone->leds_min = 1;
new_zone->leds_max = 1;
new_zone->leds_count = 1;
new_zone->matrix_map = NULL;
new_led->name = "GPU LED";
/*---------------------------------------------------------*\
| Push the zone and LED on to device vectors |
\*---------------------------------------------------------*/
leds.push_back(*new_led);
zones.push_back(*new_zone);
SetupColors();
}
void RGBController_EVGAGPUv2::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_EVGAGPUv2::DeviceUpdateLEDs()
{
RGBColor color = colors[0];
unsigned char red = RGBGetRValue(color);
unsigned char grn = RGBGetGValue(color);
unsigned char blu = RGBGetBValue(color);
evga->SetColor(red, grn, blu);
}
void RGBController_EVGAGPUv2::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_EVGAGPUv2::UpdateSingleLED(int /*led*/)
{
DeviceUpdateLEDs();
}
void RGBController_EVGAGPUv2::SetCustomMode()
{
active_mode = 1;
}
void RGBController_EVGAGPUv2::DeviceUpdateMode()
{
evga->SetMode((unsigned char)modes[(unsigned int)active_mode].value);
}
@@ -1,33 +0,0 @@
/*-----------------------------------------*\
| RGBController_EVGAGPUv2.h |
| |
| Generic RGB Interface for OpenRGB |
| EVGA GPU RGB V2 (Turing) Driver |
| |
| Adam Honse (CalcProgrammer1) 9/13/2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "EVGAGPUv2Controller.h"
class RGBController_EVGAGPUv2 : public RGBController
{
public:
RGBController_EVGAGPUv2(EVGAGPUv2Controller* evga_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
EVGAGPUv2Controller* evga;
};
@@ -1,68 +0,0 @@
/*---------------------------------------------------------*\
| Processing Code for Espurna Interface |
| |
| Adam Honse ([email protected]), 9/11/2020 |
\*---------------------------------------------------------*/
#include "EspurnaController.h"
#include <fstream>
#include <iostream>
#include <string>
#include <string.h>
EspurnaController::EspurnaController()
{
}
EspurnaController::~EspurnaController()
{
}
void EspurnaController::Initialize(char* ledstring)
{
LPSTR apikey = NULL;
LPSTR source = NULL;
LPSTR udpport_baud = NULL;
LPSTR next = NULL;
source = strtok_s(ledstring, ",", &next);
//Check for either the UDP port or the serial baud rate
if (strlen(next))
{
udpport_baud = strtok_s(next, ",", &next);
}
//Espurna protocol requires API key
if (strlen(next))
{
apikey = strtok_s(next, ",", &next);
}
InitializeEspurna(source, udpport_baud, apikey);
}
void EspurnaController::InitializeEspurna(char * clientname, char * port, char * apikey)
{
strcpy(client_name, clientname);
strcpy(port_name, port);
strcpy(espurna_apikey, apikey);
tcpport = new net_port;
tcpport->tcp_client(client_name, port_name);
}
void EspurnaController::SetLEDs(std::vector<RGBColor> colors)
{
if (tcpport != NULL)
{
RGBColor color = colors[0];
char get_request[1024];
snprintf(get_request, 1024, "GET /api/rgb?apikey=%s&value=%%23%02X%02X%02X HTTP/1.1\r\nHost: %s\r\n\r\n", espurna_apikey, RGBGetRValue(color), RGBGetGValue(color), RGBGetBValue(color), client_name);
tcpport->tcp_client_connect();
tcpport->tcp_client_write(get_request, strlen(get_request));
tcpport->tcp_close();
}
}
@@ -1,46 +0,0 @@
/*---------------------------------------------------------*\
| Definitions for Espurna Interface |
| |
| Adam Honse ([email protected]), 9/11/2020 |
\*---------------------------------------------------------*/
#ifndef ESPURNA_H
#define ESPURNA_H
#include "RGBController.h"
#include "net_port.h"
#include <vector>
#ifndef TRUE
#define TRUE true
#define FALSE false
#endif
#ifndef WIN32
#define LPSTR char *
#define strtok_s strtok_r
#endif
class EspurnaController
{
public:
EspurnaController();
~EspurnaController();
void Initialize(char* ledstring);
void InitializeEspurna(char* clientname, char* port, char * apikey);
void SetLEDs(std::vector<RGBColor> colors);
private:
int baud_rate;
char led_string[1024];
char port_name[128];
char client_name[1024];
char espurna_apikey[128];
net_port *tcpport;
};
#endif
@@ -1,74 +0,0 @@
#include "Detector.h"
#include "EspurnaController.h"
#include "RGBController.h"
#include "RGBController_Espurna.h"
#include "SettingsManager.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
/******************************************************************************************\
* *
* DetectEspurnaControllers *
* *
* Detect devices supported by the Espurna driver *
* *
\******************************************************************************************/
void DetectEspurnaControllers(std::vector<RGBController*> &rgb_controllers)
{
EspurnaController* new_espurna;
RGBController_Espurna* new_controller;
json espurna_settings;
/*-------------------------------------------------*\
| Get Espurna settings from settings manager |
\*-------------------------------------------------*/
espurna_settings = ResourceManager::get()->GetSettingsManager()->GetSettings("Setting_EspurnaDevices");
/*-------------------------------------------------*\
| If the Espurna settings contains devices, process |
\*-------------------------------------------------*/
if(espurna_settings.contains("devices"))
{
for(unsigned int device_idx = 0; device_idx < espurna_settings["devices"].size(); device_idx++)
{
std::string ip;
std::string port;
std::string apikey;
if(espurna_settings["devices"][device_idx].contains("ip"))
{
ip = espurna_settings["devices"][device_idx]["ip"];
}
if(espurna_settings["devices"][device_idx].contains("port"))
{
if(espurna_settings["devices"][device_idx]["port"].type() == json::value_t::string)
{
port = espurna_settings["devices"][device_idx]["port"];
}
else
{
port = std::to_string((unsigned int)espurna_settings["devices"][device_idx]["port"]);
}
}
if(espurna_settings["devices"][device_idx].contains("apikey"))
{
apikey = espurna_settings["devices"][device_idx]["apikey"];
}
std::string value = ip + "," + port + "," + apikey;
new_espurna = new EspurnaController();
new_espurna->Initialize((char *)value.c_str());
new_controller = new RGBController_Espurna(new_espurna);
rgb_controllers.push_back(new_controller);
}
}
} /* DetectEspurnaControllers() */
REGISTER_DETECTOR("Espurna", DetectEspurnaControllers);
@@ -1,78 +0,0 @@
/*-----------------------------------------*\
| RGBController_Espurna.cpp |
| |
| Generic RGB Interface for Espurna |
| |
| Adam Honse (CalcProgrammer1) 6/20/2019 |
\*-----------------------------------------*/
#include "RGBController_Espurna.h"
RGBController_Espurna::RGBController_Espurna(EspurnaController* espurna_ptr)
{
espurna = espurna_ptr;
name = "Espurna";
type = DEVICE_TYPE_LIGHT;
description = "Espurna Device";
mode Direct;
Direct.name = "Direct";
Direct.value = 0;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
SetupZones();
}
void RGBController_Espurna::SetupZones()
{
zone led_zone;
led_zone.name = "RGB Light";
led_zone.type = ZONE_TYPE_SINGLE;
led_zone.leds_min = 1;
led_zone.leds_max = 1;
led_zone.leds_count = 1;
led_zone.matrix_map = NULL;
zones.push_back(led_zone);
led new_led;
new_led.name = "RGB Light";
leds.push_back(new_led);
SetupColors();
}
void RGBController_Espurna::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_Espurna::DeviceUpdateLEDs()
{
espurna->SetLEDs(colors);
}
void RGBController_Espurna::UpdateZoneLEDs(int /*zone*/)
{
espurna->SetLEDs(colors);
}
void RGBController_Espurna::UpdateSingleLED(int /*led*/)
{
espurna->SetLEDs(colors);
}
void RGBController_Espurna::SetCustomMode()
{
}
void RGBController_Espurna::DeviceUpdateMode()
{
}
@@ -1,31 +0,0 @@
/*-----------------------------------------*\
| RGBController_Espurna.h |
| |
| Generic RGB Interface for Espurna |
| |
| Adam Honse (CalcProgrammer1) 9/11/2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "EspurnaController.h"
class RGBController_Espurna : public RGBController
{
public:
RGBController_Espurna(EspurnaController* espurna_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
EspurnaController* espurna;
};
@@ -1,106 +0,0 @@
/*-----------------------------------------*\
| GalaxGPUController.cpp |
| |
| Driver for Galax / KFA2 RGB on GPUs |
| |
| Niels Westphal (crashniels) 12.07.2020 |
\*-----------------------------------------*/
#include "GalaxGPUController.h"
#include <cstring>
GalaxGPUController::GalaxGPUController(i2c_smbus_interface* bus, galax_gpu_dev_id dev)
{
this->bus = bus;
this->dev = dev;
strcpy(device_name, "Galax RTX GPU"); // Would be nice to get the actual GPU name. Using this as a placeholder.
}
GalaxGPUController::~GalaxGPUController()
{
}
std::string GalaxGPUController::GetDeviceName()
{
return(device_name);
}
std::string GalaxGPUController::GetDeviceLocation()
{
std::string return_string(bus->device_name);
char addr[5];
snprintf(addr, 5, "0x%02X", dev);
return_string.append(", address ");
return_string.append(addr);
return("I2C: " + return_string);
}
unsigned char GalaxGPUController::GetLEDRed()
{
return(GalaxGPURegisterRead(GALAX_RED_REGISTER));
}
unsigned char GalaxGPUController::GetLEDGreen()
{
return(GalaxGPURegisterRead(GALAX_GREEN_REGISTER));
}
unsigned char GalaxGPUController::GetLEDBlue()
{
return(GalaxGPURegisterRead(GALAX_BLUE_REGISTER));
}
void GalaxGPUController::SetLEDColorsDirect(unsigned char red, unsigned char green, unsigned char blue) // Direct Mode is just Static Mode without applying color changes
{
GalaxGPURegisterWrite(GALAX_RED_REGISTER, red);
GalaxGPURegisterWrite(GALAX_GREEN_REGISTER, green);
GalaxGPURegisterWrite(GALAX_BLUE_REGISTER, blue);
}
void GalaxGPUController::SetLEDColorsEffect(unsigned char red, unsigned char green, unsigned char blue)
{
GalaxGPURegisterWrite(GALAX_RED_REGISTER, red);
GalaxGPURegisterWrite(GALAX_GREEN_REGISTER, green);
GalaxGPURegisterWrite(GALAX_BLUE_REGISTER, blue);
}
void GalaxGPUController::SetMode(unsigned char mode)
{
switch(mode)
{
case 1:
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_1, GALAX_MODE_STATIC_VALUE_1);
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_2, GALAX_MODE_STATIC_VALUE_2);
break;
case 2:
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_1, GALAX_MODE_BREATHING_VALUE_1);
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_2, GALAX_MODE_BREATHING_VALUE_2);
break;
case 3:
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_1, GALAX_MODE_RAINBOW_VALUE_1);
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_2, GALAX_MODE_RAINBOW_VALUE_2);
break;
case 4:
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_1, GALAX_MODE_CYCLE_BREATHING_VALUE_1);
GalaxGPURegisterWrite(GALAX_MODE_REGISTER_2, GALAX_MODE_CYCLE_BREATHING_VALUE_2);
break;
default:
break;
}
}
unsigned char GalaxGPUController::GalaxGPURegisterRead(unsigned char reg)
{
return(bus->i2c_smbus_read_byte_data(dev, reg));
}
void GalaxGPUController::GalaxGPURegisterWrite(unsigned char reg, unsigned char val)
{
bus->i2c_smbus_write_byte_data(dev, reg, val);
}
@@ -1,67 +0,0 @@
/*-----------------------------------------*\
| GalaxGPUController.h |
| |
| Driver for Galax / KFA2 RGB on GPUs |
| |
| Niels Westphal (crashniels) 12.07.2020 |
\*-----------------------------------------*/
#include <string>
#include "i2c_smbus.h"
#pragma once
typedef unsigned char galax_gpu_dev_id;
enum
{
/* RGB Registers */
GALAX_RED_REGISTER = 0x02, /* Red Register */
GALAX_GREEN_REGISTER = 0x03, /* Green Register */
GALAX_BLUE_REGISTER = 0x04, /* Blue Register */
/* MODE Registers */
GALAX_MODE_REGISTER_1 = 0x05, /* Mode Register 1 */
GALAX_MODE_REGISTER_2 = 0x06, /* Mode Register 2 */
};
enum
{
/* Static Mode Values */
GALAX_MODE_STATIC_VALUE_1 = 0x00,
GALAX_MODE_STATIC_VALUE_2 = 0x01,
/* Breathing Mode Values */
GALAX_MODE_BREATHING_VALUE_1 = 0x04,
GALAX_MODE_BREATHING_VALUE_2 = 0x00,
/* Rainbow Mode Values */
GALAX_MODE_RAINBOW_VALUE_1 = 0x84,
GALAX_MODE_RAINBOW_VALUE_2 = 0x02,
/* Cycle Breathing Mode Values */
GALAX_MODE_CYCLE_BREATHING_VALUE_1 = 0x84,
GALAX_MODE_CYCLE_BREATHING_VALUE_2 = 0x40,
};
class GalaxGPUController
{
public:
GalaxGPUController(i2c_smbus_interface* bus, galax_gpu_dev_id);
~GalaxGPUController();
std::string GetDeviceName();
std::string GetDeviceLocation();
unsigned char GetLEDRed();
unsigned char GetLEDGreen();
unsigned char GetLEDBlue();
void SetLEDColorsDirect(unsigned char red, unsigned char green, unsigned char blue);
void SetLEDColorsEffect(unsigned char red, unsigned char green, unsigned char blue);
void SetMode(unsigned char mode);
unsigned char GalaxGPURegisterRead(unsigned char reg);
void GalaxGPURegisterWrite(unsigned char reg, unsigned char val);
bool direct = false; // Temporary solution to check if we are in "Direct" mode
private:
char device_name[16];
i2c_smbus_interface * bus;
galax_gpu_dev_id dev;
};
@@ -1,97 +0,0 @@
/*-----------------------------------------*\
| GalaxGPUControllerDetect.cpp |
| |
| Driver for Galax / KFA2 RGB on GPUs |
| |
| Niels Westphal (crashniels) 12.07.2020 |
\*-----------------------------------------*/
#include "Detector.h"
#include "GalaxGPUController.h"
#include "RGBController.h"
#include "RGBController_GalaxGPU.h"
#include "i2c_smbus.h"
#include "pci_ids.h"
#include <vector>
#include <stdio.h>
#include <stdlib.h>
using namespace std::chrono_literals;
typedef struct
{
int pci_vendor;
int pci_device;
int pci_subsystem_vendor;
int pci_subsystem_device;
const char * name;
} gpu_pci_device;
#define GPU_NUM_DEVICES (sizeof(device_list) / sizeof(device_list[ 0 ]))
static const gpu_pci_device device_list[] =
{
{ NVIDIA_VEN, NVIDIA_RTX2070_DEV, NVIDIA_SUB_VEN, KFA2_RTX_2070_EX, "KFA2 RTX 2070 EX" },
{ NVIDIA_VEN, NVIDIA_RTX2070S_DEV, NVIDIA_SUB_VEN, GALAX_RTX_2070S_EX_GAMER_BLACK, "GALAX RTX 2070 Super EX Gamer Black" },
};
/******************************************************************************************\
* *
* TestForGalaxGPUController *
* *
* Tests the given address to see if a Galax GPU controller exists there. *
* *
\******************************************************************************************/
bool TestForGalaxGPUController(i2c_smbus_interface* bus, unsigned char address)
{
bool pass = false;
unsigned char res = bus->i2c_smbus_read_byte_data(address, 0x00);
unsigned char res2 = bus->i2c_smbus_read_byte_data(address, 0x01);
if(res == 0x27 && res2 == 0x10)
{
pass = true;
}
return(pass);
} /* TestForGalaxGPUController() */
/******************************************************************************************\
* *
* DetectGalaxGPUControllers *
* *
* Detect Galax GPU controllers on the enumerated I2C busses. *
* *
\******************************************************************************************/
void DetectGalaxGPUControllers(std::vector<i2c_smbus_interface*> &busses, std::vector<RGBController*> &rgb_controllers)
{
GalaxGPUController* new_GalaxGPU;
RGBController_GalaxGPU* new_controller;
for (unsigned int bus = 0; bus < busses.size(); bus++)
{
// Check for GALAX controller at 0x23
for(unsigned int dev_idx = 0; dev_idx < GPU_NUM_DEVICES; dev_idx++)
{
if(busses[bus]->pci_vendor == device_list[dev_idx].pci_vendor &&
busses[bus]->pci_device == device_list[dev_idx].pci_device &&
busses[bus]->pci_subsystem_vendor == device_list[dev_idx].pci_subsystem_vendor &&
busses[bus]->pci_subsystem_device == device_list[dev_idx].pci_subsystem_device)
{
if (TestForGalaxGPUController(busses[bus], 0x23))
{
new_GalaxGPU = new GalaxGPUController(busses[bus], 0x23);
new_controller = new RGBController_GalaxGPU(new_GalaxGPU);
new_controller->name = device_list[dev_idx].name;
rgb_controllers.push_back(new_controller);
}
}
}
}
} /* DetectGalaxGPUControllers() */
REGISTER_I2C_DETECTOR("Galax GPU", DetectGalaxGPUControllers);
@@ -1,165 +0,0 @@
/*-----------------------------------------*\
| RGBController_GalaxGPU.cpp |
| |
| Driver for Galax / KFA2 RGB on GPUs |
| |
| Niels Westphal (crashniels) 12.07.2020 |
\*-----------------------------------------*/
#include "RGBController_GalaxGPU.h"
int RGBController_GalaxGPU::GetDeviceMode()
{
int modereg1 = galax_gpu->GalaxGPURegisterRead(GALAX_MODE_REGISTER_1);
int modereg2 = galax_gpu->GalaxGPURegisterRead(GALAX_MODE_REGISTER_2);
if (modereg1 == GALAX_MODE_STATIC_VALUE_1 && modereg2 == GALAX_MODE_STATIC_VALUE_2)
{
active_mode = 1;
modes[active_mode].color_mode = MODE_COLORS_PER_LED;
}
if (modereg1 == GALAX_MODE_BREATHING_VALUE_1 && modereg2 == GALAX_MODE_BREATHING_VALUE_2)
{
active_mode = 2;
modes[active_mode].color_mode = MODE_COLORS_PER_LED;
}
if (modereg1 == GALAX_MODE_RAINBOW_VALUE_1 && modereg2 == GALAX_MODE_RAINBOW_VALUE_2)
{
active_mode = 3;
modes[active_mode].color_mode = MODE_COLORS_NONE;
}
if (modereg1 == GALAX_MODE_CYCLE_BREATHING_VALUE_1 && modereg2 == GALAX_MODE_CYCLE_BREATHING_VALUE_2)
{
active_mode = 4;
modes[active_mode].color_mode = MODE_COLORS_NONE;
}
return(active_mode);
}
RGBController_GalaxGPU::RGBController_GalaxGPU(GalaxGPUController * galax_gpu_ptr)
{
galax_gpu = galax_gpu_ptr;
name = galax_gpu->GetDeviceName();
type = DEVICE_TYPE_GPU;
description = "GALAX / KFA2 RTX GPU";
version = "1.0";
location = galax_gpu->GetDeviceLocation();
mode Direct;
Direct.name = "Direct";
Direct.value = 1;
Direct.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Direct.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Direct);
mode Breathing;
Breathing.name = "Breathing";
Breathing.value = 2;
Breathing.flags = MODE_FLAG_HAS_PER_LED_COLOR;
Breathing.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Breathing);
mode Rainbow;
Rainbow.name = "Rainbow";
Rainbow.value = 3;
Rainbow.flags = 0;
Rainbow.color_mode = MODE_COLORS_NONE;
modes.push_back(Rainbow);
mode Cycle_Breathing;
Cycle_Breathing.name = "Cycle Breathing";
Cycle_Breathing.value = 4;
Cycle_Breathing.flags = 0;
Cycle_Breathing.color_mode = MODE_COLORS_NONE;
modes.push_back(Cycle_Breathing);
SetupZones();
active_mode = GetDeviceMode();
}
void RGBController_GalaxGPU::SetupZones()
{
/*---------------------------------------------------------*\
| Set up zone |
\*---------------------------------------------------------*/
zone galax_gpu_zone;
galax_gpu_zone.name = "GPU";
galax_gpu_zone.type = ZONE_TYPE_SINGLE;
galax_gpu_zone.leds_min = 1;
galax_gpu_zone.leds_max = 1;
galax_gpu_zone.leds_count = 1;
galax_gpu_zone.matrix_map = NULL;
zones.push_back(galax_gpu_zone);
/*---------------------------------------------------------*\
| Set up LED |
\*---------------------------------------------------------*/
led galax_gpu_led;
galax_gpu_led.name = "GPU";
leds.push_back(galax_gpu_led);
SetupColors();
/*---------------------------------------------------------*\
| Initialize color |
\*---------------------------------------------------------*/
unsigned char red = galax_gpu->GetLEDRed();
unsigned char grn = galax_gpu->GetLEDGreen();
unsigned char blu = galax_gpu->GetLEDBlue();
colors[0] = ToRGBColor(red, grn, blu);
}
void RGBController_GalaxGPU::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_GalaxGPU::DeviceUpdateLEDs()
{
for(std::size_t led = 0; led < colors.size(); led++)
{
unsigned char red = RGBGetRValue(colors[led]);
unsigned char grn = RGBGetGValue(colors[led]);
unsigned char blu = RGBGetBValue(colors[led]);
if (GetMode() == 1)
{
galax_gpu->SetLEDColorsDirect(red, grn, blu);
}
else
{
galax_gpu->SetLEDColorsEffect(red, grn, blu);
}
}
}
void RGBController_GalaxGPU::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_GalaxGPU::UpdateSingleLED(int /*led*/)
{
DeviceUpdateLEDs();
}
void RGBController_GalaxGPU::SetCustomMode()
{
active_mode = 1;
}
void RGBController_GalaxGPU::DeviceUpdateMode()
{
int new_mode = modes[active_mode].value;
galax_gpu->SetMode(new_mode);
}
@@ -1,34 +0,0 @@
/*-----------------------------------------*\
| RGBController_GalaxGPU.h |
| |
| Driver for Galax / KFA2 RGB on GPUs |
| |
| Niels Westphal (crashniels) 12.07.2020 |
\*-----------------------------------------*/
#pragma once
#include "RGBController.h"
#include "GalaxGPUController.h"
class RGBController_GalaxGPU : public RGBController
{
public:
RGBController_GalaxGPU(GalaxGPUController* galax_gpu_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
GalaxGPUController* galax_gpu;
int GetDeviceMode();
};
@@ -0,0 +1,278 @@
/*-----------------------------------------*\
| RGBController_GloriousModelO.cpp |
| |
| Definitions and types for Glorious |
| and other Mice |
| |
| Niels Westphal (crashniels) 20/5/2020 |
\*-----------------------------------------*/
#include "GloriousModelOController.h"
#include <cstring>
using namespace std::chrono_literals;
GloriousModelOController::GloriousModelOController(hid_device* dev_handle)
{
dev = dev_handle;
strcpy(device_name, "Glorious Mouse");
led_count = 1;
current_mode = GLORIOUS_MODE_STATIC;
current_speed = GLORIOUS_SPEED_NORMAL;
current_direction = GLORIOUS_DIRECTION_UP;
}
GloriousModelOController::~GloriousModelOController()
{
}
std::string GloriousModelOController::GetDeviceName()
{
return(device_name);
}
unsigned int GloriousModelOController::GetLEDCount()
{
return(led_count);
}
void GloriousModelOController::SetLEDColor(RGBColor* color_buf)
{
unsigned char usb_buf[520] =
{
0x04, 0x11, 0x00, 0x7b,
0x00, 0x00, 0x00, 0x00, 0x64, 0x06, 0x04, 0x24,
0xf0, 0x03, 0x07, 0x0f, 0x1f, 0x31, 0x63, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0xff, 0xff, 0x00, 0x00, 0x00, 0xff, 0xff,
0x00, 0x00, 0x00, 0xff, 0x00, 0xff, 0x00, 0xff,
0xff, 0xff, 0xff, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x02, 0x41, 0x01, 0x40, 0xff, 0xff, 0xff,
0x42, 0x07, 0xff, 0x00, 0x00, 0x00, 0xff, 0x00,
0x00, 0x00, 0xff, 0x00, 0xff, 0xff, 0xff, 0xff,
0x00, 0xff, 0x00, 0xff, 0xff, 0xff, 0xff, 0x43,
0x42, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x42, 0xff, 0x00, 0x00, 0x00, 0xff, 0x00, 0x00,
0x42, 0x02, 0xff, 0x00, 0x00, 0x01, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00
};
usb_buf[0x0B] = 0x24;
usb_buf[0x35] = GLORIOUS_MODE_STATIC;
usb_buf[0x38] = 0x40; //max brightness
usb_buf[0x39] = RGBGetRValue(color_buf[0]);
usb_buf[0x3A] = RGBGetBValue(color_buf[0]);
usb_buf[0x3B] = RGBGetGValue(color_buf[0]);
//DPI Button
/*
usb_buf[0x0B] = 0x44; //third DPI
usb_buf[0x26] = red;
usb_buf[0x27] = blue;
usb_buf[0x28] = green;
*/
hid_send_feature_report(dev, usb_buf, sizeof(usb_buf));
std::this_thread::sleep_for(1ms);
}
void GloriousModelOController::SetMode(unsigned char mode,
unsigned char speed,
unsigned char direction,
RGBColor* color_buf)
{
unsigned char usb_buf[520] =
{
0x04, 0x11, 0x00, 0x7b,
0x00, 0x00, 0x00, 0x00, 0x64, 0x06, 0x04, 0x24,
0xf0, 0x03, 0x07, 0x0f, 0x1f, 0x31, 0x63, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0xff, 0xff, 0x00, 0x00, 0x00, 0xff, 0xff,
0x00, 0x00, 0x00, 0xff, 0x00, 0xff, 0x00, 0xff,
0xff, 0xff, 0xff, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x02, 0x41, 0x01, 0x40, 0xff, 0xff, 0xff,
0x42, 0x07, 0xff, 0x00, 0x00, 0x00, 0xff, 0x00,
0x00, 0x00, 0xff, 0x00, 0xff, 0xff, 0xff, 0xff,
0x00, 0xff, 0x00, 0xff, 0xff, 0xff, 0xff, 0x43,
0x42, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x42, 0xff, 0x00, 0x00, 0x00, 0xff, 0x00, 0x00,
0x42, 0x02, 0xff, 0x00, 0x00, 0x01, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00
};
usb_buf[0x35] = mode;
switch (mode)
{
case GLORIOUS_MODE_OFF:
usb_buf[0x81] = 0x00; //mode 0 either 0x00 or 0x03
break;
case GLORIOUS_MODE_RAINBOW:
usb_buf[0x36] = speed;
usb_buf[0x37] = direction;
break;
case GLORIOUS_MODE_SPECTRUM_BREATING:
//colours not yet researched
usb_buf[0x3C] = speed; //speed for mode 3
usb_buf[0x3D] = 0x07; //maybe some kind of bank change?+
//usb_buf[0x3D] = 0x06;
usb_buf[0x3E] = RGBGetRValue(color_buf[0]); //mode 3 red 1
usb_buf[0x3F] = RGBGetBValue(color_buf[0]); //mode 3 blue 1
usb_buf[0x40] = RGBGetGValue(color_buf[0]); //mode 3 green 1
usb_buf[0x41] = RGBGetRValue(color_buf[1]); //mode 3 red 2
usb_buf[0x42] = RGBGetBValue(color_buf[1]); //mode 3 blue 2
usb_buf[0x43] = RGBGetGValue(color_buf[1]); //mode 3 green 2
usb_buf[0x44] = RGBGetRValue(color_buf[2]); //mode 3 red 3
usb_buf[0x45] = RGBGetBValue(color_buf[2]); //mode 3 blue 3
usb_buf[0x46] = RGBGetGValue(color_buf[2]); //mode 3 green 3
usb_buf[0x47] = RGBGetRValue(color_buf[3]); //mode 3 red 4
usb_buf[0x48] = RGBGetBValue(color_buf[3]); //mode 3 blue 4
usb_buf[0x49] = RGBGetGValue(color_buf[3]); //mode 3 green 4
usb_buf[0x4A] = RGBGetRValue(color_buf[4]); //mode 3 red 5
usb_buf[0x4B] = RGBGetBValue(color_buf[4]); //mode 3 blue 5
usb_buf[0x4C] = RGBGetGValue(color_buf[4]); //mode 3 green 5
usb_buf[0x4D] = RGBGetRValue(color_buf[5]); //mode 3 red 6
usb_buf[0x4E] = RGBGetBValue(color_buf[5]); //mode 3 blue 6
usb_buf[0x4F] = RGBGetGValue(color_buf[5]); //mode 3 green 6
usb_buf[0x50] = RGBGetRValue(color_buf[6]); //mode 3 red 7
usb_buf[0x51] = RGBGetBValue(color_buf[6]); //mode 3 blue 7
usb_buf[0x52] = RGBGetGValue(color_buf[6]); //mode 3 green 7
break;
case GLORIOUS_MODE_TAIL:
usb_buf[0x53] = speed; //Speed for mode 4
break;
case GLORIOUS_MODE_SPECTRUM_CYCLE:
usb_buf[0x54] = speed; //Speed for mode 1,2,5
break;
case GLORIOUS_MODE_RAVE:
usb_buf[0x74] = speed; //Speed for mode 7
usb_buf[0x75] = RGBGetRValue(color_buf[0]); //mode 7 red 1
usb_buf[0x76] = RGBGetBValue(color_buf[0]); //mode 7 blue 1
usb_buf[0x77] = RGBGetGValue(color_buf[0]); //mode 7 green 1
usb_buf[0x78] = RGBGetRValue(color_buf[1]); //mode 7 red 2
usb_buf[0x79] = RGBGetBValue(color_buf[1]); //mode 7 blue 2
usb_buf[0x7A] = RGBGetGValue(color_buf[1]); //mode 7 green 2
break;
case GLORIOUS_MODE_WAVE:
usb_buf[0x7C] = speed; //Speed for mode 9
break;
case GLORIOUS_MODE_BREATHING:
usb_buf[0x7D] = speed;
usb_buf[0x7E] = RGBGetRValue(color_buf[0]); //mode 0a red
usb_buf[0x7F] = RGBGetBValue(color_buf[0]); //mode 0a blue
usb_buf[0x80] = RGBGetGValue(color_buf[0]); //mode 0a green
default:
break;
}
hid_send_feature_report(dev, usb_buf, sizeof(usb_buf));
std::this_thread::sleep_for(1ms);
}
@@ -0,0 +1,71 @@
/*-----------------------------------------*\
| GloriousModelOController.h |
| |
| Definitions and types for Glorious |
| and other Mice |
| |
| Niels Westphal (crashniels) 20/5/2020 |
\*-----------------------------------------*/
#include "RGBController.h"
#include <vector>
#include <hidapi/hidapi.h>
#pragma once
enum
{
GLORIOUS_MODE_OFF = 0x00, //does nothing
GLORIOUS_MODE_RAINBOW = 0x01,
GLORIOUS_MODE_STATIC = 0x02,
GLORIOUS_MODE_SPECTRUM_BREATING = 0x03,
GLORIOUS_MODE_TAIL = 0x04,
GLORIOUS_MODE_SPECTRUM_CYCLE = 0x05,
GLORIOUS_MODE_RAVE = 0x07,
GLORIOUS_MODE_EPILEPSY = 0x08, //not in the official software
GLORIOUS_MODE_WAVE = 0x09,
GLORIOUS_MODE_BREATHING = 0x0a,
};
enum
{
GLORIOUS_SPEED_SLOW = 0x41,
GLORIOUS_SPEED_NORMAL = 0x42,
GLORIOUS_SPEED_FAST = 0x43,
};
enum
{
GLORIOUS_DIRECTION_UP = 0x00,
GLORIOUS_DIRECTION_DOWN = 0x01,
};
enum
{
GLORIOUS_MODE_BREATING_SLOW = 0x01,
GLORIOUS_MODE_BREATING_NORMAL = 0x02,
GLORIOUS_MODE_BREATING_FAST = 0x03,
};
class GloriousModelOController
{
public:
GloriousModelOController(hid_device* dev_handle);
~GloriousModelOController();
std::string GetDeviceName();
unsigned int GetLEDCount();
void SetLEDColor(RGBColor* color_buf);
void SetMode(unsigned char mode, unsigned char speed, unsigned char direction, RGBColor* color_buf);
private:
hid_device* dev;
char device_name[32];
unsigned int led_count;
unsigned char current_mode;
unsigned char current_speed;
unsigned char current_direction;
};
@@ -0,0 +1,55 @@
#include "GloriousModelOController.h"
#include "RGBController.h"
#include "RGBController_GloriousModelO.h"
#include <vector>
#include <hidapi/hidapi.h>
#define Glorious_Model_O_VID 0x258A
#define Glorious_Model_O_PID 0x0036
/******************************************************************************************\
* *
* DetectGloriousModelController *
* *
* Tests the USB address to see if a Glorious Model O controller exists there. *
* *
\******************************************************************************************/
void DetectGloriousModelOControllers(std::vector<RGBController*>& rgb_controllers)
{
hid_device_info* info;
hid_device* dev = NULL;
hid_init();
dev = NULL;
info = hid_enumerate(Glorious_Model_O_VID, Glorious_Model_O_PID);
//Look for Glorious Model O
while(info)
{
if((info->vendor_id == Glorious_Model_O_VID)
&&(info->product_id == Glorious_Model_O_PID)
&&(info->interface_number == 1))
{
dev = hid_open_path(info->path);
break;
}
else
{
info = info->next;
}
}
if( dev )
{
GloriousModelOController* controller = new GloriousModelOController(dev);
RGBController_GloriousModelO* rgb_controller = new RGBController_GloriousModelO(controller);
rgb_controller->name = "Glorious Mouse";
rgb_controllers.push_back(rgb_controller);
}
}
@@ -1,93 +0,0 @@
/*-----------------------------------------------*\
| HoltekA070Controller.cpp |
| |
| Driver for Holtek USB Gaming Mouse [04d9:a070] |
| |
| Santeri Pikarinen (santeri3700) 8/01/2020 |
\*-----------------------------------------------*/
#include "HoltekA070Controller.h"
#include <cstring>
HoltekA070Controller::HoltekA070Controller(hid_device* dev_handle, const char* path)
{
dev = dev_handle;
location = path;
}
std::string HoltekA070Controller::GetDeviceLocation()
{
return(location);
}
/*-------------------------------------------------------------------------------------------------*\
| Private packet sending functions. |
\*-------------------------------------------------------------------------------------------------*/
void HoltekA070Controller::SendCustomColor
(
unsigned char red,
unsigned char green,
unsigned char blue
)
{
char usb_buf[8];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up RGB Control packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x07; // PACKET SIZE?
usb_buf[0x01] = 0x0a; // SET RGB
usb_buf[0x02] = 0x00; // SAVE (does not work with SET RGB)
usb_buf[0x03] = red; // RED
usb_buf[0x04] = green; // GREEN
usb_buf[0x05] = blue; // BLUE
usb_buf[0x06] = 0x00; // PADDING?
usb_buf[0x07] = 0x00; // PADDING?
// So far no saving function has been discovered for the "SET RGB" command.
// Such functionality might not even exist for the A070 series.
// The chosen RGB color will therefore reset after a power cycle.
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_send_feature_report(dev, (unsigned char *)usb_buf, sizeof(usb_buf));
}
void HoltekA070Controller::SendMode
(
unsigned char mode
)
{
char usb_buf[8];
/*-----------------------------------------------------*\
| Zero out buffer |
\*-----------------------------------------------------*/
memset(usb_buf, 0x00, sizeof(usb_buf));
/*-----------------------------------------------------*\
| Set up lighting mode control packet |
\*-----------------------------------------------------*/
usb_buf[0x00] = 0x07; // PACKET SIZE?
usb_buf[0x01] = 0x0b; // SET LIGHTING MODE
usb_buf[0x02] = 0x01; // SAVE
usb_buf[0x03] = mode; // MODE 01-04
usb_buf[0x04] = 0x00; // PADDING?
usb_buf[0x05] = 0x00; // PADDING?
usb_buf[0x06] = 0x00; // PADDING?
usb_buf[0x07] = 0x00; // PADDING?
/*-----------------------------------------------------*\
| Send packet |
\*-----------------------------------------------------*/
hid_send_feature_report(dev, (unsigned char *)usb_buf, sizeof(usb_buf));
}
@@ -1,47 +0,0 @@
/*---------------------------------------------------------------*\
| HoltekA070Controller.h |
| |
| Definitions and types for Holtek USB Gaming Mouse [04d9:a070] |
| |
| Santeri Pikarinen (santeri3700) 8/01/2020 |
\*---------------------------------------------------------------*/
#include "RGBController.h"
#include <string>
#include <hidapi/hidapi.h>
#pragma once
enum
{
HOLTEK_A070_MODE_STATIC = 0x01,
HOLTEK_A070_MODE_BREATHING_SLOW = 0x02,
HOLTEK_A070_MODE_BREATHING_MEDIUM = 0x03,
HOLTEK_A070_MODE_BREATHING_FAST = 0x04
};
class HoltekA070Controller
{
public:
HoltekA070Controller(hid_device* dev_handle, const char* path);
~HoltekA070Controller();
std::string GetDeviceLocation();
void SendCustomColor
(
unsigned char red,
unsigned char green,
unsigned char blue
);
void SendMode
(
unsigned char mode
);
private:
hid_device* dev;
std::string location;
};
@@ -1,89 +0,0 @@
#include "Detector.h"
#include "HoltekA070Controller.h"
#include "RGBController.h"
#include "RGBController_HoltekA070.h"
#include <vector>
#include <hidapi/hidapi.h>
/*-----------------------------------------------------*\
| Holtek Semiconductor Inc. vendor ID |
\*-----------------------------------------------------*/
#define HOLTEK_VID 0x04D9
/*-----------------------------------------------------*\
| Mouse product IDs |
\*-----------------------------------------------------*/
#define HOLTEK_A070_PID 0xA070
typedef struct
{
unsigned short usb_vid;
unsigned short usb_pid;
unsigned char usb_interface;
device_type type;
const char * name;
} holtek_device;
#define HOLTEK_NUM_DEVICES (sizeof(device_list) / sizeof(device_list[ 0 ]))
static const holtek_device device_list[] =
{
/*-------------------------------------------------------------------------------------------------------------*\
| Mice |
\*-------------------------------------------------------------------------------------------------------------*/
{ HOLTEK_VID, HOLTEK_A070_PID, 1, DEVICE_TYPE_MOUSE, "Holtek USB Gaming Mouse" },
};
void DetectHoltekControllers(std::vector<RGBController*>& rgb_controllers)
{
hid_init();
for(unsigned int device_idx = 0; device_idx < HOLTEK_NUM_DEVICES; device_idx++)
{
switch(device_list[device_idx].type)
{
case DEVICE_TYPE_MOUSE:
{
hid_device_info* info = hid_enumerate(device_list[device_idx].usb_vid, device_list[device_idx].usb_pid);
while(info)
{
if((info->vendor_id == device_list[device_idx].usb_vid)
&&(info->product_id == device_list[device_idx].usb_pid)
#ifdef USE_HID_USAGE
&&(info->interface_number == device_list[device_idx].usb_interface)
&&(info->usage_page == 0xFF00)
&&(info->usage == 2))
#else
&&(info->interface_number == device_list[device_idx].usb_interface))
#endif
{
hid_device* dev = hid_open_path(info->path);
if(dev)
{
switch(device_list[device_idx].usb_pid)
{
case HOLTEK_A070_PID:
{
HoltekA070Controller* controller = new HoltekA070Controller(dev, info->path);
RGBController_HoltekA070* rgb_controller = new RGBController_HoltekA070(controller);
rgb_controller->name = device_list[device_idx].name;
rgb_controllers.push_back(rgb_controller);
}
break;
}
}
}
info = info->next;
}
hid_free_enumeration(info);
}
break;
}
}
} /* DetectHoltekControllers() */
REGISTER_DETECTOR("Holtek", DetectHoltekControllers);
@@ -1,91 +0,0 @@
/*--------------------------------------------------------------*\
| RGBController_HoltekA070.cpp |
| |
| Generic RGB Interface for Holtek USB Gaming Mouse [04d9:a070] |
| |
| Santeri Pikarinen (santeri3700) 8/01/2020 |
\*--------------------------------------------------------------*/
#include "RGBController_HoltekA070.h"
RGBController_HoltekA070::RGBController_HoltekA070(HoltekA070Controller* holtek_ptr)
{
holtek = holtek_ptr;
name = "Holtek USB Gaming Mouse Device";
type = DEVICE_TYPE_MOUSE;
description = "Holtek USB Gaming Mouse Device";
location = holtek->GetDeviceLocation();
mode Static;
Static.name = "Static";
Static.speed = HOLTEK_A070_MODE_STATIC;
Static.flags = MODE_FLAG_HAS_PER_LED_COLOR | MODE_FLAG_HAS_BRIGHTNESS;
Static.color_mode = MODE_COLORS_PER_LED;
modes.push_back(Static);
mode Breathing;
Breathing.name = "Breathing";
Breathing.flags = MODE_FLAG_HAS_PER_LED_COLOR | MODE_FLAG_HAS_SPEED | MODE_FLAG_HAS_BRIGHTNESS;
Breathing.color_mode = MODE_COLORS_PER_LED;
Breathing.speed_min = HOLTEK_A070_MODE_BREATHING_SLOW;
Breathing.speed_max = HOLTEK_A070_MODE_BREATHING_FAST;
Breathing.speed = HOLTEK_A070_MODE_BREATHING_MEDIUM;
modes.push_back(Breathing);
SetupZones();
}
void RGBController_HoltekA070::SetupZones()
{
zone mouse_zone;
mouse_zone.name = "Mouse";
mouse_zone.type = ZONE_TYPE_SINGLE;
mouse_zone.leds_min = 1;
mouse_zone.leds_max = 1;
mouse_zone.leds_count = 1;
mouse_zone.matrix_map = NULL;
zones.push_back(mouse_zone);
led mouse_led;
mouse_led.name = "Mouse";
leds.push_back(mouse_led);
SetupColors();
}
void RGBController_HoltekA070::ResizeZone(int /*zone*/, int /*new_size*/)
{
/*---------------------------------------------------------*\
| This device does not support resizing zones |
\*---------------------------------------------------------*/
}
void RGBController_HoltekA070::DeviceUpdateLEDs()
{
unsigned char red = RGBGetRValue(colors[0]);
unsigned char green = RGBGetGValue(colors[0]);
unsigned char blue = RGBGetBValue(colors[0]);
holtek->SendCustomColor(red, green, blue);
}
void RGBController_HoltekA070::UpdateZoneLEDs(int /*zone*/)
{
DeviceUpdateLEDs();
}
void RGBController_HoltekA070::UpdateSingleLED(int /*led*/)
{
DeviceUpdateLEDs();
}
void RGBController_HoltekA070::SetCustomMode()
{
}
void RGBController_HoltekA070::DeviceUpdateMode()
{
holtek->SendMode(modes[active_mode].speed);
}
@@ -1,30 +0,0 @@
/*--------------------------------------------------------------*\
| RGBController_HoltekA070.h |
| |
| Generic RGB Interface for Holtek USB Gaming Mouse [04d9:a070] |
| |
| Santeri Pikarinen (santeri3700) 8/01/2020 |
\*--------------------------------------------------------------*/
#pragma once
#include "RGBController.h"
#include "HoltekA070Controller.h"
class RGBController_HoltekA070 : public RGBController
{
public:
RGBController_HoltekA070(HoltekA070Controller* holtek_ptr);
void SetupZones();
void ResizeZone(int zone, int new_size);
void DeviceUpdateLEDs();
void UpdateZoneLEDs(int zone);
void UpdateSingleLED(int led);
void SetCustomMode();
void DeviceUpdateMode();
private:
HoltekA070Controller* holtek;
};

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