mirror of
https://github.com/pascallanger/DIY-Multiprotocol-TX-Module.git
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RadioLink / DumboRC command packages for P Series (#1164)
* [Codex assisted] RadioLink / DumboRC command packages bridge Pass "special" packages to and from the module Allows to replicate "Set Failsafe", "Set Gyro Settings" and "Set Gyro Endpoints" from DDF-350 * RadioLink / DumboRC command packages TX / RX * RadioLink / DumboRC Helper script channel names Has max 10 channels Has no failsafe Older X series have gyro sense fixed to CH8, also can be used as regular channel * [Codex] DumboRC P Series settings script Add script that mimics interaction between DumboRC DDF-350 transmitter and P Series receivers * [Codex assisted] Split P series into separate subprotocol Split command exchange into separate subprotocol Update protocol documentation * [Codex] Improve LUA script Clean up, better event handling
This commit is contained in:
305
Lua_scripts/DumboRC P Series.lua
Normal file
305
Lua_scripts/DumboRC P Series.lua
Normal file
@@ -0,0 +1,305 @@
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local toolName = "TNS|DumboRC P series|TNE"
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-- EdgeTX/Multi bridge:
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-- Multi_Buffer[4] is RF payload length, [5..12] is RF payload.
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-- Multi rewrites the 00 00 token and checksum from its hop state.
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-- Special1 payload: 18 00 00 arg_l arg_h 00. Args: 1 poll, 2 Set GY EPA, 3 Set FS.
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-- Special2 payload: 28 00 00 gyro0 gyro1 gyro2 gyro3 00.
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-- Gyro word: bit0 enable, bit1 phase, bits2..5 SEN channel selector
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-- (0=NULL, 1..7=CH2..CH8), bits6..13 SEN, bits14..21 PCA,
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-- bits22..29 AGS, bits30..31 servo frequency (67HZ,250HZ,50HZ,300HZ).
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local PROTO_RLINK = 74
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local SUB_DUMBORC_P = 4
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local TX_READY = 4
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local TX_PAYLOAD = 5
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local TX_MAX_PAYLOAD = 8
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local RX_READY = 14
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local RX_PAYLOAD = 15
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local RX_MAX_PAYLOAD = 32
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local colorLcd = type(lcd.RGB) == "function"
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local servoHz = { "67HZ", "250HZ", "50HZ", "300HZ" }
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local gyro = { enable = 0, phase = 0, senCh = 0, sen = 0, pca = 0, ags = 0, flags = 0 }
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local lines = {}
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local sel = 1
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local top = 1
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local edit = false
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local blink = 0
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local moduleOk = false
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local haveValues = false
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local function limit(v, mn, mx)
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if v < mn then return mn end
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if v > mx then return mx end
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return v
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end
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local function byte(v)
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return limit(math.floor(tonumber(v) or 0), 0, 255)
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end
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local function gyroRaw(v)
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return limit(math.floor(tonumber(v) or 0), 0, 200)
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end
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local function gyroText(v)
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local raw = gyroRaw(v)
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return tostring(math.floor(raw / 2)) .. (raw % 2 == 0 and ".0" or ".5")
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end
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local function screenLines()
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if colorLcd then return limit(math.floor(((LCD_H or 272) - 46) / 20), 8, 12) end
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return 6
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end
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local function drawTitle(title)
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if colorLcd and lcd.drawFilledRectangle then
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lcd.drawFilledRectangle(0, 0, LCD_W, 30, COLOR_THEME_SECONDARY1)
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lcd.drawText(3, 5, title, COLOR_THEME_PRIMARY2)
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elseif lcd.drawScreenTitle then
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lcd.drawScreenTitle(title, 0, 0)
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else
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lcd.drawText(0, 0, title, INVERS)
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end
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end
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local function findModule()
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for i = 0, 1 do
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local m = model.getModule(i)
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if m and m["Type"] == 6 and m["protocol"] == PROTO_RLINK and m["subProtocol"] == SUB_DUMBORC_P then
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return true
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end
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end
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return false
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end
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local function initBuffer()
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multiBuffer(0, string.byte("R"))
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if multiBuffer(0) ~= string.byte("R") then
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error("Not enough memory!")
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return
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end
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multiBuffer(1, string.byte("L"))
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multiBuffer(2, string.byte("n"))
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multiBuffer(3, string.byte("k"))
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multiBuffer(TX_READY, 0)
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multiBuffer(RX_READY, 0)
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end
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local function release()
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for i = 0, RX_PAYLOAD + RX_MAX_PAYLOAD - 1 do
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multiBuffer(i, 0)
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end
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end
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local function sendPayload(payload)
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local len = #payload
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if len < 1 or len > TX_MAX_PAYLOAD or multiBuffer(TX_READY) ~= 0 then
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return false
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end
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for i = 1, TX_MAX_PAYLOAD do
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multiBuffer(TX_PAYLOAD + i - 1, 0)
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end
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for i = 1, #payload do
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multiBuffer(TX_PAYLOAD + i - 1, byte(payload[i]))
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end
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multiBuffer(TX_READY, len)
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return true
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end
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local function sendSpecial1(arg)
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return sendPayload({ 0x18, 0, 0, arg % 256, math.floor(arg / 256), 0 })
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end
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local function gyroSelector()
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if gyro.senCh < 2 or gyro.senCh > 8 then return 0 end
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return gyro.senCh - 1
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end
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local function sendGyro()
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local sen = gyroRaw(gyro.sen)
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local pca = gyroRaw(gyro.pca)
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local ags = gyroRaw(gyro.ags)
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local b0 = gyro.enable + gyro.phase * 2 + gyroSelector() * 4 + (sen % 4) * 64
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local b1 = math.floor(sen / 4) + (pca % 4) * 64
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local b2 = math.floor(pca / 4) + (ags % 4) * 64
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local b3 = math.floor(ags / 4) + limit(gyro.flags, 0, 3) * 64
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sendPayload({ 0x28, 0, 0, b0, b1, b2, b3, 0 })
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end
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local function decodeGyroBytes(b0, b1, b2, b3)
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b0 = byte(b0); b1 = byte(b1); b2 = byte(b2); b3 = byte(b3)
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gyro.enable = b0 % 2
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gyro.phase = math.floor(b0 / 2) % 2
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local selector = math.floor(b0 / 4) % 16
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gyro.senCh = selector == 0 and 0 or limit(selector + 1, 2, 8)
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gyro.sen = gyroRaw(math.floor(b0 / 64) + (b1 % 64) * 4)
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gyro.pca = gyroRaw(math.floor(b1 / 64) + (b2 % 64) * 4)
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gyro.ags = gyroRaw(math.floor(b2 / 64) + (b3 % 64) * 4)
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gyro.flags = math.floor(b3 / 64) % 4
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haveValues = true
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end
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local function pollRx()
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local len = multiBuffer(RX_READY)
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if not len or len == 0 then return end
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if len > RX_MAX_PAYLOAD then
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multiBuffer(RX_READY, 0)
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return
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end
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local p = {}
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for i = 1, len do
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p[i] = multiBuffer(RX_PAYLOAD + i - 1)
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end
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multiBuffer(RX_READY, 0)
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if len == 7 and p[1] == 0x01 then
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decodeGyroBytes(p[3], p[4], p[5], p[6])
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end
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end
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local function chText()
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if gyro.senCh == 0 then return "NULL" end
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return "CH" .. gyro.senCh
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end
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local function rebuildLines()
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lines = {
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{ "Poll RX", "action", function() sendSpecial1(1) end },
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{ "Gyro", "toggle", "enable" },
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{ "Phase", "toggle", "phase" },
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{ "SEN Ch", "channel", "senCh" },
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{ "SEN", "percent", "sen" },
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{ "PCA", "percent", "pca" },
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{ "AGS", "percent", "ags" },
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{ "Servo Hz", "flags", "flags" },
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{ "Send Gyro", "action", sendGyro },
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{ "Set GY EPA", "action", function() sendSpecial1(2) end },
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{ "Set FS", "action", function() sendSpecial1(3) end },
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}
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end
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local function lineValue(line)
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if line[2] == "action" then return ">" end
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if not haveValues then return "--" end
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if line[2] == "toggle" then return gyro[line[3]] == 0 and "Off" or "On" end
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if line[2] == "channel" then return chText() end
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if line[2] == "percent" then return gyroText(gyro[line[3]]) end
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if line[2] == "flags" then return servoHz[gyro.flags + 1] or tostring(gyro.flags) end
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return ""
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end
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local function changeValue(dir, fast)
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local line = lines[sel]
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if not line then return end
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local step = fast and 20 or 1
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haveValues = true
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if line[2] == "toggle" then
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gyro[line[3]] = dir > 0 and 1 or 0
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elseif line[2] == "channel" then
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local vals = { 0, 2, 3, 4, 5, 6, 7, 8 }
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local pos = 1
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for i = 1, #vals do
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if vals[i] == gyro.senCh then pos = i end
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end
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gyro.senCh = vals[limit(pos + dir, 1, #vals)]
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elseif line[2] == "percent" then
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gyro[line[3]] = gyroRaw(gyro[line[3]] + dir * step)
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elseif line[2] == "flags" then
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gyro.flags = limit(gyro.flags + dir, 0, 3)
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end
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end
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local function fastRotary()
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return getRotEncSpeed() > 1
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end
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local function handleEvent(event)
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local nextEvent = edit and EVT_VIRTUAL_INC or EVT_VIRTUAL_NEXT
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local prevEvent = edit and EVT_VIRTUAL_DEC or EVT_VIRTUAL_PREV
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if event == nextEvent then
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if edit then changeValue(1, fastRotary()) else sel = limit(sel + 1, 1, #lines) end
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elseif event == prevEvent then
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if edit then changeValue(-1, fastRotary()) else sel = limit(sel - 1, 1, #lines) end
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elseif event == EVT_VIRTUAL_NEXT_PAGE then
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if edit then changeValue(1, true) else sel = limit(sel + screenLines(), 1, #lines) end
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elseif event == EVT_VIRTUAL_PREV_PAGE then
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if edit then changeValue(-1, true) else sel = limit(sel - screenLines(), 1, #lines) end
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killEvents(event)
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elseif event == EVT_VIRTUAL_ENTER then
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local line = lines[sel]
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if line and line[2] == "action" then
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line[3]()
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elseif line then
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edit = not edit
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end
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end
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local count = screenLines()
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if sel < top then top = sel end
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if sel >= top + count then top = sel - count + 1 end
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end
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local function draw()
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lcd.clear()
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drawTitle("DumboRC P series")
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local font = colorLcd and 0 or SMLSIZE
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local x = 2
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local y = colorLcd and 34 or 9
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local dy = colorLcd and 20 or 8
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local valueX = colorLcd and 150 or 82
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if not moduleOk then
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if colorLcd then
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lcd.drawText(x, y + dy, "Select Multi RadLink/Dumbo_P", font + BLINK)
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else
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lcd.drawText(x, y + dy, "Select RadLink", font + BLINK)
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lcd.drawText(x, y + dy * 2, "Dumbo_P", font + BLINK)
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end
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return
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end
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for i = top, math.min(#lines, top + screenLines() - 1) do
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local attr = font
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if i == sel then
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attr = attr + INVERS
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if edit then
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blink = (blink + 1) % 30
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if blink > 15 then attr = font end
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end
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end
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local yy = y + (i - top) * dy
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lcd.drawText(x, yy, lines[i][1], attr)
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lcd.drawText(valueX, yy, lineValue(lines[i]), attr)
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end
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end
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local function init()
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moduleOk = type(multiBuffer) == "function" and findModule()
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rebuildLines()
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if moduleOk then initBuffer() end
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end
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local function run(event)
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if event == nil then
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error("Cannot be run as a model script!")
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return 2
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elseif event == EVT_VIRTUAL_EXIT then
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if moduleOk then release() end
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return 2
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end
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if moduleOk then
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pollRx()
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handleEvent(event)
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end
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draw()
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return 0
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end
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return { init = init, run = run }
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@@ -163,8 +163,9 @@
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72,0,Q90C,Std,0,FMode,VTX+
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74,0,RadioLink,Surface,0,CH5,CH6,CH7,CH8,FS_CH1,FS_CH2,FS_CH3,FS_CH4,FS_CH5,FS_CH6,FS_CH7,FS_CH8
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74,1,RadioLink,Air,0,CH5,CH6,CH7,CH8,FS_CH1,FS_CH2,FS_CH3,FS_CH4,FS_CH5,FS_CH6,FS_CH7,FS_CH8
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74,2,RadioLink,DumboRC,0,CH5,CH6,CH7,CH8,FS_CH1,FS_CH2,FS_CH3,FS_CH4,FS_CH5,FS_CH6,FS_CH7,FS_CH8
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74,2,RadioLink,DumboRC,0,CH5,CH6,CH7,CH8GY,CH9,CH10,n-a,n-a,n-a,n-a,n-a,n-a
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74,3,RadioLink,RC4G,0,CH5,FS_CH1,FS_CH2,FS_CH3,FS_CH4
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74,4,RadioLink,Dumbo_P,0,CH5,CH6,CH7,CH8GY,CH9,CH10,n-a,n-a,n-a,n-a,n-a,n-a
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76,0,Realacc,Std,1,Flip,Light,Calib,HLess,RTH,ThCut,Rotat
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50,0,Redpine,Fast,0,sCH5,sCH6,sCH7,sCH8,sCH9,sCH10,sCH11,sCH12,sCH13,sCH14,sCH15,sCH16
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50,1,Redpine,Slow,0,sCH5,sCH6,sCH7,sCH8,sCH9,sCH10,sCH11,sCH12,sCH13,sCH14,sCH15,sCH16
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@@ -280,7 +280,7 @@ local function Multi_Init()
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end
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--Exceptions on first 4 channels...
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if ( protocol == 73 or (protocol == 74 and sub_protocol == 0) or (protocol == 60 and sub_protocol == 2) or protocol == 89) then -- Kyosho or RadioLink Surface or Pelikan/SCX24 or Losi
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if ( protocol == 73 or (protocol == 74 and (sub_protocol == 0 or sub_protocol == 2 or sub_protocol == 4)) or (protocol == 60 and sub_protocol == 2) or protocol == 89) then -- Kyosho or RadioLink (Surface or DumboRC/P) or Pelikan/SCX24 or Losi
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channel_names[1] = "ST"
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channel_names[2] = "THR"
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channel_names[3] = "CH3"
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@@ -71,7 +71,7 @@
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71,JJRC345,JJRC345,SkyTmblr
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72,Q90C
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73,Kyosho,FHSS,Hype
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74,RadioLink,Surface,Air,DumboRC,RC4G
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74,RadioLink,Surface,Air,DumboRC,RC4G,Dumbo_P
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75,---
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76,Realacc
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77,OMP
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@@ -180,7 +180,7 @@ const char STR_SUBTYPE_WFLY2[] = "\x05""RF20x";
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const char STR_SUBTYPE_HOTT[] = "\x07""Sync\0 ""No_Sync";
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const char STR_SUBTYPE_PELIKAN[] = "\x05""Pro\0 ""Lite\0""SCX24";
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const char STR_SUBTYPE_V761[] = "\x05""3ch\0 ""4ch\0 ""TOPRC";
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const char STR_SUBTYPE_RLINK[] = "\x07""Surface""Air\0 ""DumboRC""RC4G\0 ";
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const char STR_SUBTYPE_RLINK[] = "\x07""Surface""Air\0 ""DumboRC""RC4G\0 ""Dumbo_P";
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const char STR_SUBTYPE_KYOSHO[] = "\x04""FHSS""Hype";
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const char STR_SUBTYPE_KYOSHO2[] = "\x05""KT-17";
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const char STR_SUBTYPE_KYOSHO3[] = "\x03""ASF";
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@@ -460,7 +460,7 @@ const mm_protocol_definition multi_protocols[] = {
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{PROTO_Q90C, STR_Q90C, NO_SUBTYPE, 0, OPTION_RFTUNE, 0, 0, SW_NRF, Q90C_init, Q90C_callback },
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#endif
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#if defined(RLINK_CC2500_INO)
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{PROTO_RLINK, STR_RLINK, STR_SUBTYPE_RLINK, 4, OPTION_RFTUNE, 0, 0, SW_CC2500, RLINK_init, RLINK_callback },
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{PROTO_RLINK, STR_RLINK, STR_SUBTYPE_RLINK, 5, OPTION_RFTUNE, 0, 0, SW_CC2500, RLINK_init, RLINK_callback },
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#endif
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#if defined(REALACC_NRF24L01_INO)
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{PROTO_REALACC, STR_REALACC, NO_SUBTYPE, 0, OPTION_NONE, 0, 0, SW_NRF, REALACC_init, REALACC_callback },
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@@ -473,6 +473,7 @@ enum RLINK
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RLINK_AIR = 1,
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RLINK_DUMBORC = 2,
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RLINK_RC4G = 3,
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RLINK_DUMBORC_P = 4,
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};
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enum MOULDKG
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{
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@@ -584,6 +585,7 @@ enum MultiPacketTypes
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MULTI_TELEMETRY_MLINK = 15,
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MULTI_TELEMETRY_CONFIG = 16,
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MULTI_TELEMETRY_PROTO = 17,
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MULTI_TELEMETRY_RLINK = 18,
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};
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// Macros
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@@ -1200,6 +1202,8 @@ Serial: 100000 Baud 8e2 _ xxxx xxxx p --
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RLINK_SURFACE 0
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RLINK_AIR 1
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RLINK_DUMBORC 2
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RLINK_RC4G 3
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RLINK_DUMBORC_P 4
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Power value => 0x80 0=High/1=Low
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Stream[3] = option_protocol;
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@@ -1227,6 +1231,7 @@ Serial: 100000 Baud 8e2 _ xxxx xxxx p --
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FrSkyX and FrSkyX2: Stream[27..34] during normal operation unstuffed SPort data to be sent
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HoTT: Stream[27] 1 byte for telemetry type
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DSM: Stream[27..33] Forward Programming
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RadioLink/DumboRC P: Stream[27..35] raw command payload, used to send failsafe and gyro settings
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*/
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/*
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Multiprotocol telemetry/command definition for OpenTX and erskyTX
|
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@@ -1378,4 +1383,8 @@ Serial: 100000 Baud 8e2 _ xxxx xxxx p --
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data[n+3] = sub protocols text length, only sent if nbr_sub != 0
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data[n+4..] = sub protocol names, only sent if nbr_sub != 0
|
||||
|
||||
Type 0x12 RadioLink/DumboRC P raw command payload
|
||||
length: variable
|
||||
data[0..] = raw command payload, used to send failsafe and gyro settings
|
||||
|
||||
*/
|
||||
|
||||
@@ -265,6 +265,11 @@ uint8_t packet_in[TELEMETRY_BUFFER_SIZE];//telemetry receiving packets
|
||||
uint8_t CONFIG_SerialRX_val[7];
|
||||
bool CONFIG_SerialRX=false;
|
||||
#endif
|
||||
#ifdef RLINK_HUB_TELEMETRY
|
||||
uint8_t RLINK_SerialRX_val[8];
|
||||
uint8_t RLINK_SerialRX_len=0;
|
||||
bool RLINK_SerialRX=false;
|
||||
#endif
|
||||
#endif // TELEMETRY
|
||||
|
||||
uint8_t multi_protocols_index=0xFF;
|
||||
@@ -1577,6 +1582,15 @@ void update_serial_data()
|
||||
CONFIG_SerialRX=true;
|
||||
}
|
||||
#endif
|
||||
#ifdef RLINK_HUB_TELEMETRY
|
||||
if(protocol==PROTO_RLINK && sub_protocol==RLINK_DUMBORC_P
|
||||
&& rx_len>27 && rx_len<=27+sizeof(RLINK_SerialRX_val))
|
||||
{//DumboRC P raw command payload from Lua/multiBuffer bridge
|
||||
RLINK_SerialRX_len=rx_len-27;
|
||||
memcpy(RLINK_SerialRX_val, (const void *)&rx_ok_buff[27], RLINK_SerialRX_len);
|
||||
RLINK_SerialRX=true;
|
||||
}
|
||||
#endif
|
||||
}
|
||||
|
||||
RX_DONOTUPDATE_off;
|
||||
|
||||
@@ -37,6 +37,7 @@ enum {
|
||||
|
||||
uint32_t RLINK_rand1;
|
||||
uint32_t RLINK_rand2;
|
||||
uint32_t RLINK_pseudo;
|
||||
|
||||
static uint32_t __attribute__((unused)) RLINK_prng_next(uint32_t r)
|
||||
{
|
||||
@@ -93,34 +94,14 @@ static void __attribute__((unused)) RLINK_hop()
|
||||
RLINK_shuffle_freqs(RLINK_compute_start_id(rx_tx_addr[0] + (rx_tx_addr[1] << 8)));
|
||||
RLINK_shuffle_freqs(RLINK_compute_start_id(rx_tx_addr[2] + (rx_tx_addr[3] << 8)));
|
||||
|
||||
// replace one of the channel randomely
|
||||
// replace one of the channel randomly
|
||||
rf_ch_num=random(0xfefefefe)%0x11; // 0x00..0x10
|
||||
if(inc==9) inc=6; // frequency exception
|
||||
hopping_frequency[rf_ch_num]=12*16+inc;
|
||||
}
|
||||
|
||||
static void __attribute__((unused)) RLINK_TXID_init()
|
||||
static void __attribute__((unused)) RLINK_hop_RC4G()
|
||||
{
|
||||
#ifdef RLINK_RC4G_FORCE_ID
|
||||
//TODO: test any ID
|
||||
if(sub_protocol==RLINK_RC4G)
|
||||
{
|
||||
rx_tx_addr[1]=0x77;
|
||||
rx_tx_addr[2]=0x00;
|
||||
rx_tx_addr[3]=0x00;
|
||||
}
|
||||
#endif
|
||||
#ifdef RLINK_FORCE_ID
|
||||
if(sub_protocol==RLINK_SURFACE)
|
||||
memcpy(rx_tx_addr,"\x3A\x99\x22\x3A",RLINK_TX_ID_LEN); //surface RC6GS
|
||||
else
|
||||
memcpy(rx_tx_addr,"\xFC\x11\x0D\x20",RLINK_TX_ID_LEN); //air T8FB
|
||||
#endif
|
||||
// channels order depend on ID
|
||||
if(sub_protocol!=RLINK_RC4G)
|
||||
RLINK_hop();
|
||||
else
|
||||
{//RLINK_RC4G
|
||||
// Find 2 unused channels
|
||||
// first channel is a multiple of 3 between 00 and 5D
|
||||
// second channel is a multiple of 3 between 63 and BD
|
||||
@@ -162,7 +143,52 @@ static void __attribute__((unused)) RLINK_TXID_init()
|
||||
hopping_frequency[0] = 0x03;
|
||||
hopping_frequency[1] = 0x6F;
|
||||
#endif
|
||||
}
|
||||
|
||||
// calc next pseudo random value
|
||||
static void __attribute__((unused)) RLINK_next_pseudo()
|
||||
{
|
||||
RLINK_pseudo = ((RLINK_pseudo * 0xAA) + 0x03) % 0x7673;
|
||||
}
|
||||
|
||||
static void __attribute__((unused)) RLINK_set_next_channel()
|
||||
{
|
||||
CC2500_WriteReg(CC2500_0A_CHANNR, hopping_frequency[RLINK_pseudo & 0x0F]);
|
||||
}
|
||||
|
||||
static uint8_t __attribute__((unused)) RLINK_checksum(const uint8_t *data, uint8_t payload_len, bool include_id=false)
|
||||
{
|
||||
uint8_t sum=0;
|
||||
for(uint8_t i=0;i<payload_len;i++)
|
||||
sum+=data[i];
|
||||
if(include_id)
|
||||
for(uint8_t i=0;i<RLINK_TX_ID_LEN;i++)
|
||||
sum+=rx_tx_addr[i];
|
||||
return sum;
|
||||
}
|
||||
|
||||
static void __attribute__((unused)) RLINK_TXID_init()
|
||||
{
|
||||
#ifdef RLINK_RC4G_FORCE_ID
|
||||
//TODO: test any ID
|
||||
if(sub_protocol==RLINK_RC4G)
|
||||
{
|
||||
rx_tx_addr[1]=0x77;
|
||||
rx_tx_addr[2]=0x00;
|
||||
rx_tx_addr[3]=0x00;
|
||||
}
|
||||
#endif
|
||||
#ifdef RLINK_FORCE_ID
|
||||
if(sub_protocol==RLINK_SURFACE)
|
||||
memcpy(rx_tx_addr,"\x3A\x99\x22\x3A",RLINK_TX_ID_LEN); //surface RC6GS
|
||||
else
|
||||
memcpy(rx_tx_addr,"\xFC\x11\x0D\x20",RLINK_TX_ID_LEN); //air T8FB
|
||||
#endif
|
||||
// channels order depend on ID
|
||||
if(sub_protocol==RLINK_RC4G)
|
||||
RLINK_hop_RC4G();
|
||||
else
|
||||
RLINK_hop();
|
||||
|
||||
#ifdef RLINK_DEBUG
|
||||
debug("ID:");
|
||||
@@ -191,7 +217,7 @@ static void __attribute__((unused)) RLINK_rf_init()
|
||||
for (uint8_t i = 0; i < 39; ++i)
|
||||
CC2500_WriteReg(i, pgm_read_byte_near(&RLINK_init_values[i]));
|
||||
|
||||
if(sub_protocol==RLINK_DUMBORC)
|
||||
if(sub_protocol == RLINK_DUMBORC || sub_protocol == RLINK_DUMBORC_P)
|
||||
{
|
||||
CC2500_WriteReg(4, 0xBA);
|
||||
CC2500_WriteReg(5, 0xDC);
|
||||
@@ -206,7 +232,6 @@ static void __attribute__((unused)) RLINK_rf_init()
|
||||
|
||||
static void __attribute__((unused)) RLINK_send_packet()
|
||||
{
|
||||
static uint32_t pseudo=0;
|
||||
uint32_t bits = 0;
|
||||
uint8_t bitsavailable = 0;
|
||||
uint8_t idx = 6;
|
||||
@@ -225,13 +250,14 @@ static void __attribute__((unused)) RLINK_send_packet()
|
||||
{
|
||||
case RLINK_SURFACE:
|
||||
packet[1] |= 0x01;
|
||||
//radiolink additionnal ID which is working only on a small set of RXs
|
||||
//radiolink additional ID which is working only on a small set of RXs
|
||||
//if(RX_num) packet[1] |= ((RX_num+2)<<4)+4; // RX number limited to 10 values, 0 is a wildcard
|
||||
break;
|
||||
case RLINK_AIR:
|
||||
packet[1] |= 0x21; //air 0x21 on dump but it looks to support telemetry at least RSSI
|
||||
break;
|
||||
case RLINK_DUMBORC:
|
||||
case RLINK_DUMBORC_P:
|
||||
packet[1] |= 0x01; //always 0x00 on dump but does appear to support telemtry on newer transmitters
|
||||
break;
|
||||
}
|
||||
@@ -258,19 +284,16 @@ static void __attribute__((unused)) RLINK_send_packet()
|
||||
}
|
||||
|
||||
// hop
|
||||
pseudo=((pseudo * 0xAA) + 0x03) % 0x7673; // calc next pseudo random value
|
||||
CC2500_WriteReg(CC2500_0A_CHANNR, hopping_frequency[pseudo & 0x0F]);
|
||||
packet[28]= pseudo;
|
||||
packet[29]= pseudo >> 8;
|
||||
RLINK_next_pseudo();
|
||||
RLINK_set_next_channel();
|
||||
packet[28]= RLINK_pseudo;
|
||||
packet[29]= RLINK_pseudo >> 8;
|
||||
packet[30]= 0x00; // unknown
|
||||
packet[31]= 0x00; // unknown
|
||||
packet[32]= rf_ch_num; // index of value changed in the RF table
|
||||
|
||||
// check
|
||||
uint8_t sum=0;
|
||||
for(uint8_t i=1;i<33;i++)
|
||||
sum+=packet[i];
|
||||
packet[33]=sum;
|
||||
packet[33]=RLINK_checksum(&packet[1], RLINK_TX_PACKET_LEN-1);
|
||||
|
||||
// send packet
|
||||
CC2500_WriteData(packet, RLINK_TX_PACKET_LEN+1);
|
||||
@@ -280,7 +303,7 @@ static void __attribute__((unused)) RLINK_send_packet()
|
||||
if(packet_count>5) packet_count=0;
|
||||
|
||||
#ifdef RLINK_DEBUG
|
||||
debugln("C= 0x%02X",hopping_frequency[pseudo & 0x0F]);
|
||||
debugln("C= 0x%02X",hopping_frequency[RLINK_pseudo & 0x0F]);
|
||||
debug("P=");
|
||||
for(uint8_t i=1;i<RLINK_TX_PACKET_LEN+1;i++)
|
||||
debug(" 0x%02X",packet[i]);
|
||||
@@ -288,6 +311,78 @@ static void __attribute__((unused)) RLINK_send_packet()
|
||||
#endif
|
||||
}
|
||||
|
||||
#ifdef RLINK_HUB_TELEMETRY
|
||||
|
||||
static bool __attribute__((unused)) RLINK_DUMBORC_send_command()
|
||||
{
|
||||
if(!RLINK_SerialRX || sub_protocol != RLINK_DUMBORC_P)
|
||||
return false;
|
||||
|
||||
RLINK_SerialRX=false;
|
||||
|
||||
if(RLINK_SerialRX_len > sizeof(RLINK_SerialRX_val))
|
||||
return false;
|
||||
|
||||
CC2500_Strobe(CC2500_SIDLE);
|
||||
|
||||
RLINK_next_pseudo();
|
||||
RLINK_set_next_channel();
|
||||
|
||||
packet[0] = RLINK_SerialRX_len;
|
||||
memcpy(&packet[1], RLINK_SerialRX_val, RLINK_SerialRX_len);
|
||||
packet[2] = RLINK_pseudo;
|
||||
packet[3] = RLINK_pseudo >> 8;
|
||||
// special packages have id check embedded in checksum
|
||||
packet[RLINK_SerialRX_len] = RLINK_checksum(&packet[1], RLINK_SerialRX_len - 1, true);
|
||||
|
||||
CC2500_WriteData(packet, RLINK_SerialRX_len + 1);
|
||||
|
||||
packet_count++;
|
||||
if(packet_count>5) packet_count=0;
|
||||
|
||||
#ifdef RLINK_DEBUG
|
||||
debugln("C= 0x%02X",hopping_frequency[RLINK_pseudo & 0x0F]);
|
||||
debug("DumboRC P command=");
|
||||
for(uint8_t i=1;i<packet[0]+1;i++)
|
||||
debug(" 0x%02X",packet[i]);
|
||||
debugln("");
|
||||
#endif
|
||||
|
||||
return true;
|
||||
}
|
||||
#endif
|
||||
|
||||
// logic is rougly copied from ddf-350, which in itself seems to be based on cc2500 docs
|
||||
static uint8_t __attribute__((unused)) RLINK_DUMBORC_tele_rssi_as_percent(uint8_t rssi)
|
||||
{
|
||||
if(rssi < 15)
|
||||
rssi=15;
|
||||
else if(rssi > 90)
|
||||
rssi=90;
|
||||
return ((90 - rssi) * 100) / 75;
|
||||
}
|
||||
|
||||
static bool __attribute__((unused)) RLINK_DUMBORC_validate_telemetry_packet(const uint8_t *data)
|
||||
{
|
||||
const uint8_t declaredLen = data[0];
|
||||
|
||||
if(data[1] == 0x00)
|
||||
{
|
||||
// telemetry package follows base radiolink procotol with slightly less rules
|
||||
if(declaredLen != RLINK_RX_PACKET_LEN || memcmp(&data[2], rx_tx_addr, RLINK_TX_ID_LEN) != 0)
|
||||
return false;
|
||||
|
||||
// telemetry packages do not have id check embeeded in checksum, just like base RadioLink
|
||||
return data[RLINK_RX_PACKET_LEN] == RLINK_checksum(&data[1], RLINK_RX_PACKET_LEN - 1);
|
||||
}
|
||||
|
||||
if(sub_protocol != RLINK_DUMBORC_P)
|
||||
return false;
|
||||
|
||||
// special packages have id check embedded in checksum
|
||||
return data[declaredLen] == RLINK_checksum(&data[1], declaredLen - 1, true);
|
||||
}
|
||||
|
||||
#ifndef MULTI_AIR
|
||||
static void __attribute__((unused)) RLINK_RC4G_send_packet()
|
||||
{
|
||||
@@ -311,7 +406,7 @@ static void __attribute__((unused)) RLINK_RC4G_send_packet()
|
||||
packet[5+i*2] = val;
|
||||
packet[8+i ] |= (val>>4) & 0xF0;
|
||||
}
|
||||
//special channel which is linked to gyro on the orginal TX but allocating it on CH5 here
|
||||
//special channel which is linked to gyro on the original TX but allocating it on CH5 here
|
||||
packet[10] = convert_channel_16b_limit(CH5,0,100);
|
||||
//failsafe
|
||||
for(uint8_t i=0;i<4;i++)
|
||||
@@ -332,10 +427,15 @@ static void __attribute__((unused)) RLINK_RC4G_send_packet()
|
||||
}
|
||||
#endif
|
||||
|
||||
#if defined RLINK_HUB_TELEMETRY
|
||||
uint16_t RLINK_timing_last_rfsend = 0;
|
||||
#endif
|
||||
|
||||
#define RLINK_TIMING_PROTO 20000-100 // -100 for compatibility with R8EF
|
||||
#define RLINK_TIMING_RFSEND 10500
|
||||
#define RLINK_TIMING_CHECK 2000
|
||||
#define RLINK_RC4G_TIMING_PROTO 14460
|
||||
#define RLINK_DUMBORC_COMMAND_RFSEND 5000
|
||||
uint16_t RLINK_callback()
|
||||
{
|
||||
if(sub_protocol == RLINK_RC4G)
|
||||
@@ -360,49 +460,93 @@ uint16_t RLINK_callback()
|
||||
#endif
|
||||
CC2500_SetPower();
|
||||
CC2500_SetFreqOffset();
|
||||
RLINK_send_packet();
|
||||
#if not defined RLINK_HUB_TELEMETRY
|
||||
return RLINK_TIMING_PROTO;
|
||||
RLINK_send_packet();
|
||||
return RLINK_TIMING_PROTO; // RLINK_DATA
|
||||
#else
|
||||
if(!(packet[1]&0x02))
|
||||
return RLINK_TIMING_PROTO; //Normal packet
|
||||
//Telemetry packet
|
||||
if(RLINK_DUMBORC_send_command())
|
||||
{
|
||||
phase++; // RX1
|
||||
return RLINK_TIMING_RFSEND;
|
||||
RLINK_timing_last_rfsend = RLINK_DUMBORC_COMMAND_RFSEND;
|
||||
return RLINK_timing_last_rfsend;
|
||||
}
|
||||
|
||||
RLINK_send_packet();
|
||||
|
||||
if(!(packet[1]&0x02))
|
||||
return RLINK_TIMING_PROTO; // Normal packet -> RLINK_DATA
|
||||
// Telemetry packet
|
||||
phase++; // RX1
|
||||
RLINK_timing_last_rfsend = RLINK_TIMING_RFSEND;
|
||||
return RLINK_timing_last_rfsend;
|
||||
case RLINK_RX1:
|
||||
CC2500_Strobe(CC2500_SIDLE);
|
||||
CC2500_Strobe(CC2500_SFRX);
|
||||
CC2500_SetTxRxMode(RX_EN);
|
||||
CC2500_Strobe(CC2500_SRX);
|
||||
phase++; // RX2
|
||||
return RLINK_TIMING_PROTO-RLINK_TIMING_RFSEND-RLINK_TIMING_CHECK;
|
||||
return RLINK_TIMING_PROTO-RLINK_timing_last_rfsend-RLINK_TIMING_CHECK;
|
||||
case RLINK_RX2:
|
||||
len = CC2500_ReadReg(CC2500_3B_RXBYTES | CC2500_READ_BURST) & 0x7F;
|
||||
if (len == RLINK_RX_PACKET_LEN + 1 + 2) //Telemetry frame is 15 bytes + 1 byte for length + 2 bytes for RSSI&LQI&CRC
|
||||
const bool dumborc_family = sub_protocol == RLINK_DUMBORC || sub_protocol == RLINK_DUMBORC_P;
|
||||
//Telemetry frame is 15 bytes + 1 byte for length + 2 bytes for RSSI&LQI&CRC
|
||||
const bool rlink_telem_len = !dumborc_family && len == RLINK_RX_PACKET_LEN + 1 + 2;
|
||||
// length byte + type byte + checksum byte + RSSI/LQI/CRC
|
||||
const bool dumborc_len = dumborc_family && len >= 5 && len <= sizeof(packet_in);
|
||||
if (rlink_telem_len || dumborc_len)
|
||||
{
|
||||
#ifdef RLINK_DEBUG_TELEM
|
||||
debug("Telem:");
|
||||
#endif
|
||||
CC2500_ReadData(packet_in, len);
|
||||
if(packet_in[0]==RLINK_RX_PACKET_LEN && (packet_in[len-1] & 0x80) && memcmp(&packet[2],rx_tx_addr,RLINK_TX_ID_LEN)==0 && (packet_in[6]==packet[1] || sub_protocol == RLINK_DUMBORC))
|
||||
{//Correct telemetry received: length, CRC, ID and type
|
||||
//packet_in[6] is 0x00 on almost all DumboRC RX so assume it is always valid
|
||||
if(len >= 3 && packet_in[0] == len - 3 && (packet_in[len-1] & 0x80))
|
||||
{//Telemetry received with correct length and CC2500 CRC
|
||||
#ifdef RLINK_DEBUG_TELEM
|
||||
for(uint8_t i=0;i<len;i++)
|
||||
debug(" %02X",packet_in[i]);
|
||||
#endif
|
||||
bool valid_telem=false;
|
||||
if(dumborc_family)
|
||||
{
|
||||
if(RLINK_DUMBORC_validate_telemetry_packet(packet_in))
|
||||
{
|
||||
if(packet_in[1] == 0x00)
|
||||
{
|
||||
uint8_t tele_rssi = RLINK_DUMBORC_tele_rssi_as_percent(packet_in[7]);
|
||||
uint16_t ext_v = packet_in[9] | (((uint16_t)packet_in[10]) << 8);
|
||||
uint16_t direct_rssi = packet_in[11] | (((uint16_t)packet_in[12]) << 8);
|
||||
direct_rssi = direct_rssi > 100 ? 100 : direct_rssi;
|
||||
RX_RSSI = direct_rssi ? direct_rssi : tele_rssi;
|
||||
v_lipo1 = 0; //Has no RX batt
|
||||
v_lipo2 = ext_v > 255 ? 255 : ext_v; //Batt in same position as base radiolink
|
||||
valid_telem=true;
|
||||
}
|
||||
else if(sub_protocol == RLINK_DUMBORC_P)
|
||||
{
|
||||
telemetry_link=2; // Raw DumboRC P packet to Lua/multiBuffer handling.
|
||||
pps_counter++;
|
||||
}
|
||||
}
|
||||
}
|
||||
else if(packet_in[0] == RLINK_RX_PACKET_LEN && memcmp(&packet[2],rx_tx_addr,RLINK_TX_ID_LEN)==0 && packet_in[6]==packet[1])
|
||||
{
|
||||
RX_RSSI=packet_in[7]&0x7F; //Should be packet_in[7]-256 but since it's an uint8_t...
|
||||
v_lipo1=packet_in[8]<<1; //RX Batt
|
||||
v_lipo2=packet_in[9]; //Batt
|
||||
valid_telem=true;
|
||||
}
|
||||
if(valid_telem)
|
||||
{
|
||||
TX_RSSI = packet_in[len-2];
|
||||
if(TX_RSSI >=128)
|
||||
TX_RSSI -= 128;
|
||||
else
|
||||
TX_RSSI += 128;
|
||||
RX_RSSI=packet_in[7]&0x7F; //Should be packet_in[7]-256 but since it's an uint8_t...
|
||||
v_lipo1=packet_in[8]<<1; //RX Batt
|
||||
v_lipo2=packet_in[9]; //Batt
|
||||
telemetry_link=1; //Send telemetry out
|
||||
pps_counter++;
|
||||
packet_count=0;
|
||||
}
|
||||
}
|
||||
#ifdef RLINK_DEBUG_TELEM
|
||||
debugln("");
|
||||
#endif
|
||||
|
||||
@@ -315,6 +315,15 @@ static void multi_send_status()
|
||||
}
|
||||
#endif
|
||||
|
||||
#ifdef RLINK_HUB_TELEMETRY
|
||||
void RLINK_raw_frame()
|
||||
{
|
||||
multi_send_header(MULTI_TELEMETRY_RLINK, packet_in[0]);
|
||||
for (uint8_t i = 1; i <= packet_in[0]; i++) // raw DumboRC reply payload
|
||||
Serial_write(packet_in[i]);
|
||||
}
|
||||
#endif
|
||||
|
||||
static void multi_send_frskyhub()
|
||||
{
|
||||
multi_send_header(MULTI_TELEMETRY_HUB, 9);
|
||||
@@ -992,6 +1001,14 @@ void TelemetryUpdate()
|
||||
return;
|
||||
}
|
||||
#endif
|
||||
#if defined RLINK_HUB_TELEMETRY
|
||||
if(telemetry_link == 2 && protocol == PROTO_RLINK)
|
||||
{
|
||||
RLINK_raw_frame();
|
||||
telemetry_link=0;
|
||||
return;
|
||||
}
|
||||
#endif
|
||||
#if defined SCANNER_TELEMETRY
|
||||
if (telemetry_link && protocol == PROTO_SCANNER)
|
||||
{
|
||||
|
||||
@@ -830,6 +830,7 @@ const PPM_Parameters PPM_prot[14*NBR_BANKS]= {
|
||||
RLINK_AIR
|
||||
RLINK_DUMBORC
|
||||
RLINK_RC4G
|
||||
RLINK_DUMBORC_P
|
||||
PROTO_SCANNER
|
||||
NONE
|
||||
PROTO_SCORPIO
|
||||
|
||||
@@ -137,7 +137,7 @@ CFlie|AIR|38|CFlie||||||||NRF24L01|
|
||||
[Q2X2](Protocols_Details.md#Q2X2---29)||29|Q222|Q242|Q282||||||NRF24L01|
|
||||
[Q303](Protocols_Details.md#Q303---31)||31|Q303|CX35|CX10D|CX10WD|||||NRF24L01|XN297
|
||||
[Q90C](Protocols_Details.md#Q90C---72)||72|Q90C*||||||||NRF24L01|XN297
|
||||
[RadioLink](Protocols_Details.md#RadioLink---74)||74|Surface|Air|DumboRC|RC4G|||||CC2500|
|
||||
[RadioLink](Protocols_Details.md#RadioLink---74)||74|Surface|Air|DumboRC|RC4G|Dumbo_P||||CC2500|
|
||||
[Realacc](Protocols_Details.md#Realacc---76)||76|R11||||||||NRF24L01|
|
||||
[Redpine](Protocols_Details.md#Redpine---50)||50|FAST|SLOW|||||||NRF24L01|XN297
|
||||
[Scanner](Protocols_Details.md#Scanner---54)||54|||||||||CC2500|
|
||||
@@ -1063,7 +1063,21 @@ Air protocol. TXs: T8FB,T8S. Compatible RXs: R8EF,R8FM,R8SM,R4FG,R4F
|
||||
Telemetry: RX_RSSI (for the original value add -256), TX_RSSI, TX_QLY (0..100%)
|
||||
|
||||
### Sub_protocol DumboRC - *2*
|
||||
Compatible RXs: X6/X6F/X6FG
|
||||
Compatible RXs:
|
||||
* X6/X6F/X6FG/X6DC/X6DCG/X10F/X10FG (Other X Series should work as well)
|
||||
* P6F/P6FG/P6DC/P6DCG/P6FP/P10F/P10FG (Other P Series should work as well)
|
||||
|
||||
For P series specific features, see subprotocol 4 below.
|
||||
|
||||
CH1|CH2|CH3|CH4|CH5|CH6|CH7|CH8|CH9|CH10
|
||||
---|---|---|---|---|---|---|---|---|----
|
||||
CH1|CH2|CH3|CH4|CH5|CH6|CH7|CH8/Gyro gain|CH9|CH10
|
||||
|
||||
Telemetry:
|
||||
* RX_RSSI uses the receiver's direct percentage when available
|
||||
* TX_RSSI is the module-side received RSSI
|
||||
* TX_QLY is 0..100%
|
||||
* A2=external battery voltage in 0.1V units (set the ratio to 25.5 and adjust with offset)
|
||||
|
||||
### Sub_protocol RC4G - *3*
|
||||
Compatible RXs: R4EH-G(/R4EH-H)
|
||||
@@ -1076,6 +1090,21 @@ FS=FailSafe
|
||||
|
||||
CH5 is driven by CH3 on the original TX, gyro sensitivity?
|
||||
|
||||
### Sub_protocol Dumbo_P - *4*
|
||||
Compatible RXs: P6F/P6FG/P6DC/P6DCG/P6FP/P10F/P10FG (Other P Series should work as well)
|
||||
|
||||
P series supports configuring receiver from transmitter. Originally, this logic appeared on DumboRC DDF-350 transmitter in 1.1.5 firmware version.
|
||||
|
||||
You can adjust these settings by using "DumboRC P Series.lua" script.
|
||||
|
||||
Settings include:
|
||||
* gyro on/off
|
||||
* gyro phase
|
||||
* gyro tuning
|
||||
* gyro gain channel
|
||||
* setting gyro endpoints
|
||||
* setting failsafe values
|
||||
|
||||
## Futaba - *21*
|
||||
Also called SFHSS depending on radio version.
|
||||
|
||||
|
||||
Reference in New Issue
Block a user