Add TripleVFO, the king of clickbait...

This commit is contained in:
Armel FAUVEAU committed 2026-08-30 12:45:36 +02:00
1 parent b86da168e9
commit 8c78d28f0d
5 files changed
+748 -4

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+54 -4
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@@ -36,11 +36,11 @@
#include <stdint.h>
#include <stdbool.h>
/* ABI 3: the table below (v1 core + the fields once labelled "v2 additions") is a
* single versioned layout. Any change to app_api_t - a reorder, a removal, or an
* append - MUST bump this. Keep in sync with ABI_VERSION in pack_app.py, which
/* The table below is a single versioned layout. Any change to app_api_t - a
* reorder, a removal, or an append - MUST bump this. Keep in sync with the
* value read by pack_app.py, which
* stamps the blob the loader checks against. */
#define APP_ABI_VERSION 3u
#define APP_ABI_VERSION 4u
/* KEY codes mirrored from driver/keyboard.h (enum KEY_Code_e). Kept in sync by
* value so the app stays independent of the firmware headers. */
@@ -61,6 +61,7 @@ enum {
APP_KEY_EXIT = 13,
APP_KEY_STAR = 14,
APP_KEY_F = 15,
APP_KEY_PTT = 16,
APP_KEY_INVALID = 19,
};
@@ -78,6 +79,43 @@ typedef struct {
uint8_t sel_ch; /* selected memory channel 0..47 */
} app_fm_state_t;
/* Compact, pointer-free description of one receiver in the resident triple-VFO
* service. Overlay apps must never see VFO_Info_t directly: its layout varies
* with firmware features and contains resident pointers. */
typedef struct {
uint32_t frequency; /* RX frequency, x10 Hz */
uint16_t channel; /* memory channel, zero based */
uint16_t step; /* step, 10 Hz units */
uint16_t code_value; /* CTCSS x0.1 Hz or DCS octal source value */
int16_t rssi_dbm; /* last/current corrected RSSI */
uint8_t modulation;
uint8_t power;
uint8_t bandwidth;
uint8_t code_type;
uint8_t code;
uint8_t offset_direction;
uint8_t reverse;
uint8_t squelch;
uint8_t flags; /* APP_TRIVFO_* below */
char name[11]; /* channel name, trimmed and NUL terminated */
} app_trivfo_info_t;
enum {
APP_TRIVFO_SELECTED = 1u << 0,
APP_TRIVFO_TUNED = 1u << 1,
APP_TRIVFO_RECEIVING = 1u << 2,
APP_TRIVFO_TX = 1u << 3,
APP_TRIVFO_USER_POWER = 1u << 4,
APP_TRIVFO_AUDIO_BAR = 1u << 5,
};
enum {
APP_TRIVFO_SCAN = 0,
APP_TRIVFO_RX = 1,
APP_TRIVFO_HOLD = 2,
APP_TRIVFO_TX_STATE = 3,
};
typedef struct app_api {
uint8_t abi_version; /* == APP_ABI_VERSION */
@@ -174,6 +212,18 @@ typedef struct app_api {
* UV-K1 LEFT/RIGHT -> -1/+1
* Returns 0 for any other key. Keep get_key() raw for spatial controls. */
int8_t (*nav_dir)(uint8_t key);
/* ---- triple VFO (ABI 4) ----
* A and B are the live Main Display VFOs. C is a resident temporary VFO
* loaded from c_channel (or the first valid memory after B when invalid).
* tick is called every 20 ms by the app and returns APP_TRIVFO_* state. */
uint16_t (*trivfo_enter)(uint16_t c_channel);
void (*trivfo_leave)(void);
void (*trivfo_get)(uint8_t vfo, app_trivfo_info_t *info);
void (*trivfo_select)(uint8_t vfo);
uint16_t (*trivfo_step)(uint8_t vfo, int8_t direction);
uint8_t (*trivfo_tick)(void);
uint8_t (*trivfo_ptt)(bool pressed); /* 0 OK; non-zero TX denial/timeout */
} app_api_t;
/* BK4819 AF modes for set_af (mirror driver/bk4819.h values). */
+408
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@@ -32,10 +32,14 @@
#include "driver/st7565.h"
#include "driver/system.h"
#include "driver/backlight.h"
#include "app/app.h"
#include "ui/helper.h"
#include "ui/status.h"
#include "board.h"
#include "audio.h"
#include "dcs.h"
#include "functions.h"
#include "frequencies.h"
#include "radio.h"
#include "helper/battery.h"
#include "settings.h"
@@ -91,6 +95,382 @@ static uint32_t app_make_seed(void)
* gEeprom.VfoInfo[0].pRX->Frequency;
}
/* ---- ABI 4: resident triple-VFO engine ---------------------------------
* The overlay owns the UI and key timing, while this resident engine owns all
* radio details. Keeping VFO_Info_t and BK4819 sequencing on this side makes
* the app independent of feature-dependent firmware layouts. */
#define APP_TRIVFO_COUNT 3u
#define APP_TRIVFO_TUNE_TICKS 5u /* 100 ms at one tick / 20 ms */
#define APP_TRIVFO_TX_HOLD_TICKS 125u /* keep the existing 2.5 s TX return */
static VFO_Info_t app_trivfo_c;
static VFO_Info_t *app_trivfo_saved_rx;
static VFO_Info_t *app_trivfo_saved_tx;
static VFO_Info_t *app_trivfo_saved_current;
static uint8_t app_trivfo_selected;
static uint8_t app_trivfo_pre_rx_selected;
static uint8_t app_trivfo_current;
static uint8_t app_trivfo_settle;
static uint16_t app_trivfo_hold;
static uint8_t app_trivfo_candidate_wait;
static uint32_t app_trivfo_tx_ticks;
static bool app_trivfo_running;
static bool app_trivfo_receiving;
static bool app_trivfo_transmitting;
static bool app_trivfo_sql_open;
static bool app_trivfo_ctcss_ok;
static bool app_trivfo_cdcss_ok;
static bool app_trivfo_ab_dirty;
static bool app_trivfo_restore_selection;
static uint8_t app_trivfo_freq_dirty;
static VFO_Info_t *app_trivfo_vfo(uint8_t vfo)
{
return vfo < 2u ? &gEeprom.VfoInfo[vfo] : &app_trivfo_c;
}
static bool app_trivfo_load_memory(VFO_Info_t *vfo, uint16_t channel)
{
ChannelScanDisplayInfo_t info;
if (!IS_MR_CHANNEL(channel) ||
!SETTINGS_FetchChannelScanDisplayInfo(channel, &info))
return false;
RADIO_InitInfo(vfo, channel, info.rx.Frequency);
vfo->freq_config_RX = info.rx;
vfo->freq_config_TX = info.tx;
vfo->TX_OFFSET_FREQUENCY = info.offset;
vfo->StepFrequency = info.stepFrequency;
vfo->STEP_SETTING = info.stepSetting;
vfo->Modulation = info.modulation;
vfo->TX_OFFSET_FREQUENCY_DIRECTION = info.txOffsetFrequencyDirection;
vfo->OUTPUT_POWER = info.outputPower;
vfo->FrequencyReverse = info.frequencyReverse;
vfo->CHANNEL_BANDWIDTH = info.channelBandwidth;
vfo->BUSY_CHANNEL_LOCK = info.busyChannelLock;
vfo->TX_LOCK = info.txLock;
#ifdef ENABLE_DTMF_CALLING
vfo->DTMF_DECODING_ENABLE = info.dtmfDecodingEnable;
#endif
vfo->DTMF_PTT_ID_TX_MODE = info.dtmfPttIdTxMode;
vfo->Band = FREQUENCY_GetBand(vfo->freq_config_RX.Frequency);
vfo->Compander = MR_GetChannelAttributes(channel)->compander;
SETTINGS_FetchChannelName(vfo->Name, channel);
vfo->pRX = vfo->FrequencyReverse ? &vfo->freq_config_TX : &vfo->freq_config_RX;
vfo->pTX = vfo->FrequencyReverse ? &vfo->freq_config_RX : &vfo->freq_config_TX;
RADIO_ConfigureSquelchAndOutputPower(vfo);
return true;
}
static uint16_t app_trivfo_next_channel(uint16_t channel, int8_t direction, uint8_t vfo)
{
if (direction == 0)
direction = 1;
channel = RADIO_FindNextChannel((uint16_t)(channel + direction), direction,
false, vfo < 2u ? vfo : 0u);
return channel;
}
static void app_trivfo_tune(uint8_t vfo)
{
app_trivfo_current = vfo % APP_TRIVFO_COUNT;
gRxVfo = app_trivfo_vfo(app_trivfo_current);
gCurrentVfo = gRxVfo;
app_trivfo_receiving = false;
app_trivfo_sql_open = false;
app_trivfo_ctcss_ok = false;
app_trivfo_cdcss_ok = false;
app_trivfo_candidate_wait = 0;
app_trivfo_settle = APP_TRIVFO_TUNE_TICKS;
AUDIO_AudioPathOff();
gEnableSpeaker = false;
RADIO_SetupRegisters(false);
FUNCTION_Init();
}
static void app_trivfo_poll_irq(void)
{
while (BK4819_ReadRegister(BK4819_REG_0C) & 1u) {
BK4819_WriteRegister(BK4819_REG_02, 0);
const uint16_t irq = BK4819_ReadRegister(BK4819_REG_02);
if (irq & BK4819_REG_02_SQUELCH_LOST) app_trivfo_sql_open = true;
if (irq & BK4819_REG_02_SQUELCH_FOUND) {
app_trivfo_sql_open = false;
app_trivfo_ctcss_ok = false;
app_trivfo_cdcss_ok = false;
}
/* A BK4819 CSS interrupt is a transition, not a persistent level.
* Depending on the silicon revision and the configured polarity, the
* first transition can be reported as FOUND or LOST. MAIN keeps the
* decoder state across both transitions; do the same here and use any
* CSS transition as proof that the configured decoder has acquired the
* signal. A wrong CTCSS/DCS does not generate either transition. */
if (irq & (BK4819_REG_02_CTCSS_LOST | BK4819_REG_02_CTCSS_FOUND))
app_trivfo_ctcss_ok = true;
if (irq & (BK4819_REG_02_CDCSS_LOST | BK4819_REG_02_CDCSS_FOUND))
app_trivfo_cdcss_ok = true;
}
}
static bool app_trivfo_qualified(void)
{
const VFO_Info_t *vfo = app_trivfo_vfo(app_trivfo_current);
if (!app_trivfo_sql_open)
return false;
if (vfo->Modulation != MODULATION_FM || vfo->pRX->CodeType == CODE_TYPE_OFF)
return true;
if (vfo->pRX->CodeType == CODE_TYPE_CONTINUOUS_TONE)
return app_trivfo_ctcss_ok;
return app_trivfo_cdcss_ok;
}
static uint16_t app_trivfo_enter(uint16_t c_channel)
{
app_trivfo_saved_rx = gRxVfo;
app_trivfo_saved_tx = gTxVfo;
app_trivfo_saved_current = gCurrentVfo;
if (!IS_MR_CHANNEL(c_channel) ||
!SETTINGS_FetchChannelScanInfo(c_channel, NULL, NULL)) {
uint16_t start = IS_MR_CHANNEL(gEeprom.ScreenChannel[1])
? gEeprom.ScreenChannel[1] : gEeprom.MrChannel[1];
c_channel = app_trivfo_next_channel(start, 1, 2);
}
if (c_channel == 0xFFFFu || !app_trivfo_load_memory(&app_trivfo_c, c_channel)) {
c_channel = RADIO_FindNextChannel(MR_CHANNEL_FIRST, RADIO_CHANNEL_UP, false, 0);
if (c_channel != 0xFFFFu)
app_trivfo_load_memory(&app_trivfo_c, c_channel);
}
app_trivfo_selected = 0;
app_trivfo_pre_rx_selected = 0;
app_trivfo_restore_selection = false;
app_trivfo_hold = 0;
app_trivfo_running = true;
app_trivfo_transmitting = false;
app_trivfo_ab_dirty = false;
app_trivfo_freq_dirty = 0;
app_trivfo_tune(0);
return c_channel;
}
static void app_trivfo_leave(void)
{
if (!app_trivfo_running)
return;
if (app_trivfo_transmitting) {
BK4819_ToggleGpioOut(BK4819_GPIO1_PIN29_PA_ENABLE, false);
BK4819_ToggleGpioOut(BK4819_GPIO5_PIN1_RED, false);
}
AUDIO_AudioPathOff();
gEnableSpeaker = false;
app_trivfo_running = false;
app_trivfo_transmitting = false;
gRxVfo = app_trivfo_saved_rx;
gTxVfo = app_trivfo_saved_tx;
gCurrentVfo = app_trivfo_saved_current;
}
static void app_trivfo_get(uint8_t index, app_trivfo_info_t *info)
{
if (info == NULL || index >= APP_TRIVFO_COUNT)
return;
const VFO_Info_t *vfo = app_trivfo_vfo(index);
memset(info, 0, sizeof(*info));
info->frequency = vfo->pRX->Frequency;
info->channel = vfo->CHANNEL_SAVE;
info->step = vfo->StepFrequency;
if (vfo->pRX->CodeType == CODE_TYPE_CONTINUOUS_TONE)
info->code_value = CTCSS_Options[vfo->pRX->Code];
else if (vfo->pRX->CodeType == CODE_TYPE_DIGITAL ||
vfo->pRX->CodeType == CODE_TYPE_REVERSE_DIGITAL)
info->code_value = DCS_Options[vfo->pRX->Code];
info->rssi_dbm = (index == app_trivfo_current)
? BK4819_GetRSSI_dBm() + dBmCorrTable[vfo->Band] : -160;
info->modulation = vfo->Modulation;
info->power = vfo->OUTPUT_POWER == OUTPUT_POWER_USER
? (uint8_t)(gSetting_set_pwr + 1u) : vfo->OUTPUT_POWER;
info->bandwidth = vfo->CHANNEL_BANDWIDTH;
#ifdef ENABLE_FEAT_F4HWN_NARROWER
if (info->bandwidth == BANDWIDTH_NARROW && gSetting_set_nfm == 1)
info->bandwidth++;
#endif
info->code_type = vfo->pRX->CodeType;
info->code = vfo->pRX->Code;
info->offset_direction = vfo->TX_OFFSET_FREQUENCY_DIRECTION;
info->reverse = vfo->FrequencyReverse;
info->squelch = gEeprom.SQUELCH_LEVEL;
if (index == app_trivfo_selected) info->flags |= APP_TRIVFO_SELECTED;
if (index == app_trivfo_current) info->flags |= APP_TRIVFO_TUNED;
if (index == app_trivfo_current && app_trivfo_receiving) info->flags |= APP_TRIVFO_RECEIVING;
if (index == app_trivfo_selected && app_trivfo_transmitting) info->flags |= APP_TRIVFO_TX;
if (vfo->OUTPUT_POWER == OUTPUT_POWER_USER) info->flags |= APP_TRIVFO_USER_POWER;
#ifdef ENABLE_AUDIO_BAR
if (gSetting_mic_bar) info->flags |= APP_TRIVFO_AUDIO_BAR;
#endif
if (IS_MR_CHANNEL(vfo->CHANNEL_SAVE))
memcpy(info->name, vfo->Name, sizeof(info->name) - 1u);
}
static void app_trivfo_select(uint8_t vfo)
{
if (vfo < APP_TRIVFO_COUNT)
app_trivfo_selected = vfo;
}
static uint16_t app_trivfo_step(uint8_t index, int8_t direction)
{
if (index >= APP_TRIVFO_COUNT || app_trivfo_transmitting)
return 0xFFFFu;
VFO_Info_t *vfo = app_trivfo_vfo(index);
if (IS_FREQ_CHANNEL(vfo->CHANNEL_SAVE)) {
if (direction == 0)
direction = 1;
const uint32_t frequency = APP_SetFrequencyByStep(vfo, direction);
if (RX_freq_check(frequency) < 0)
return 0xFFFFu;
vfo->freq_config_RX.Frequency = frequency;
RADIO_ApplyOffset(vfo);
RADIO_ConfigureSquelchAndOutputPower(vfo);
if (index < 2u)
app_trivfo_freq_dirty |= (uint8_t)(1u << index);
app_trivfo_hold = 0;
app_trivfo_tune(index);
return vfo->CHANNEL_SAVE;
}
uint16_t base = IS_MR_CHANNEL(vfo->CHANNEL_SAVE) ? vfo->CHANNEL_SAVE
: (index < 2u ? gEeprom.MrChannel[index] : gEeprom.MrChannel[1]);
const uint16_t channel = app_trivfo_next_channel(base, direction, index);
if (channel == 0xFFFFu)
return channel;
if (index < 2u) {
gEeprom.ScreenChannel[index] = channel;
gEeprom.MrChannel[index] = channel;
RADIO_ConfigureChannel(index, VFO_CONFIGURE_RELOAD);
app_trivfo_ab_dirty = true;
} else {
app_trivfo_load_memory(&app_trivfo_c, channel);
}
app_trivfo_hold = 0;
app_trivfo_tune(index);
return channel;
}
static uint8_t app_trivfo_ptt(bool pressed);
static uint8_t app_trivfo_tick(void)
{
if (!app_trivfo_running)
return APP_TRIVFO_SCAN;
if (app_trivfo_transmitting) {
const uint32_t timeout = ((uint32_t)gEeprom.TX_TIMEOUT_TIMER + 1u) * 250u;
if (++app_trivfo_tx_ticks >= timeout) {
app_trivfo_ptt(false);
return APP_TRIVFO_HOLD;
}
return APP_TRIVFO_TX_STATE;
}
app_trivfo_poll_irq();
if (app_trivfo_settle > 0) {
app_trivfo_settle--;
return APP_TRIVFO_SCAN;
}
const bool qualified = app_trivfo_qualified();
if (qualified) {
app_trivfo_hold = 0;
if (!app_trivfo_receiving) {
if (app_trivfo_selected != app_trivfo_current) {
app_trivfo_pre_rx_selected = app_trivfo_selected;
app_trivfo_restore_selection = true;
app_trivfo_selected = app_trivfo_current;
}
app_trivfo_receiving = true;
AUDIO_AudioPathOn();
gEnableSpeaker = true;
BK4819_SetRxAudioGain();
/* BK4819_SetupSquelch() ends by selecting AF_MUTE. Mirror
* APP_StartListening(): restore the channel demodulator only once
* the carrier/CSS has qualified. */
RADIO_SetModulation(gRxVfo->Modulation);
BK4819_ToggleGpioOut(BK4819_GPIO6_PIN2_GREEN, true);
}
return APP_TRIVFO_RX;
}
if (app_trivfo_receiving) {
app_trivfo_receiving = false;
AUDIO_AudioPathOff();
gEnableSpeaker = false;
BK4819_ToggleGpioOut(BK4819_GPIO6_PIN2_GREEN, false);
/* Use the same receive-response dwell as resident DWR. The resident
* value is expressed in 10 ms ticks; Triple VFO ticks every 20 ms. */
app_trivfo_hold = (dual_watch_count_after_2_10ms + 1u) / 2u;
app_trivfo_candidate_wait = 50u;
}
if (app_trivfo_hold > 0) {
app_trivfo_hold--;
if (app_trivfo_hold == 0 && app_trivfo_restore_selection) {
app_trivfo_selected = app_trivfo_pre_rx_selected;
app_trivfo_restore_selection = false;
}
return APP_TRIVFO_HOLD;
}
/* Like resident dual watch, give a coded carrier time to acquire its CSS.
* A wrong tone/code must not monopolise the receiver indefinitely. */
if (app_trivfo_sql_open && app_trivfo_candidate_wait < 50u) {
app_trivfo_candidate_wait++;
return APP_TRIVFO_HOLD;
}
app_trivfo_tune((uint8_t)((app_trivfo_current + 1u) % APP_TRIVFO_COUNT));
return APP_TRIVFO_SCAN;
}
static uint8_t app_trivfo_ptt(bool pressed)
{
if (!app_trivfo_running)
return 1;
if (!pressed) {
if (!app_trivfo_transmitting)
return 0;
RADIO_SendEndOfTransmission();
app_trivfo_transmitting = false;
BK4819_ToggleGpioOut(BK4819_GPIO5_PIN1_RED, false);
app_trivfo_hold = APP_TRIVFO_TX_HOLD_TICKS;
app_trivfo_tune(app_trivfo_selected);
return 0;
}
if (app_trivfo_transmitting)
return 0;
VFO_Info_t *vfo = app_trivfo_vfo(app_trivfo_selected);
if ((TX_freq_check(vfo->pTX->Frequency) != 0 && vfo->TX_LOCK) ||
vfo->Modulation != MODULATION_FM ||
(vfo->BUSY_CHANNEL_LOCK && app_trivfo_receiving) ||
gBatteryDisplayLevel == 0 || gBatteryDisplayLevel > 6)
return 1;
AUDIO_AudioPathOff();
gEnableSpeaker = false;
BK4819_ToggleGpioOut(BK4819_GPIO6_PIN2_GREEN, false);
gRxVfo = gTxVfo = gCurrentVfo = vfo;
RADIO_SetTxParameters();
BK4819_ToggleGpioOut(BK4819_GPIO5_PIN1_RED, true);
BK4819_DisableScramble();
app_trivfo_current = app_trivfo_selected;
app_trivfo_receiving = false;
app_trivfo_transmitting = true;
app_trivfo_tx_ticks = 0;
return 0;
}
/* ---- v2 radio wrappers ---- */
static int16_t app_rssi_dbm(void) { return BK4819_GetRSSI_dBm() + dBmCorrTable[gRxVfo->Band]; }
static uint16_t app_bk_read(uint8_t r) { return BK4819_ReadRegister((BK4819_REGISTER_t)r); }
@@ -133,6 +513,12 @@ static void app_draw_battery(void)
}
static void app_battery_sample(void)
{
/* The resident scheduler deliberately skips ADC battery updates while the
* PA is keyed. Do the same for Triple VFO: sampling the loaded voltage as
* capacity made an 80% pack appear to fall immediately to about 16%. */
if (app_trivfo_transmitting)
return;
BOARD_ADC_GetBatteryInfo(&gBatteryVoltages[gBatteryVoltageIndex++], &gBatteryCurrent);
if (gBatteryVoltageIndex > 3)
gBatteryVoltageIndex = 0;
@@ -334,6 +720,13 @@ uint8_t APP_LaunchOverlay(uint8_t slot)
.fm_commit = app_fm_commit,
#endif
.nav_dir = app_nav_dir,
.trivfo_enter = app_trivfo_enter,
.trivfo_leave = app_trivfo_leave,
.trivfo_get = app_trivfo_get,
.trivfo_select = app_trivfo_select,
.trivfo_step = app_trivfo_step,
.trivfo_tick = app_trivfo_tick,
.trivfo_ptt = app_trivfo_ptt,
};
app_run_slot = slot; /* for cfg_load / cfg_save */
@@ -359,6 +752,9 @@ uint8_t APP_LaunchOverlay(uint8_t slot)
app_entry_t entry = (app_entry_t)(((uint32_t)ws + h.entry_off) | 1u);
entry(&api);
/* A defensive leave also covers an app returning through an error path. */
app_trivfo_leave();
/* Restore the resident RX/dual-watch tuning the app ran on top of. */
gEeprom.RX_VFO = saved_rx_vfo;
gRxVfo = saved_rx;
@@ -367,6 +763,18 @@ uint8_t APP_LaunchOverlay(uint8_t slot)
/* The overlay held app code, not a valid config sector. */
PY25Q16_InvalidateCache();
if (app_trivfo_ab_dirty) {
SETTINGS_SaveVfoIndices();
app_trivfo_ab_dirty = false;
}
for (uint8_t i = 0; i < 2u; i++) {
if (app_trivfo_freq_dirty & (1u << i))
SETTINGS_SaveChannel(gEeprom.VfoInfo[i].CHANNEL_SAVE, i,
&gEeprom.VfoInfo[i], 1);
}
app_trivfo_freq_dirty = 0;
/* Commit any deferred config the app staged (RMW keeps the slot header). */
if (app_cfg_len) {
PY25Q16_WriteBuffer(APP_SLOT_BASE(slot) + APP_CFG_OFFSET, app_cfg_buf, app_cfg_len, false);
+12
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@@ -0,0 +1,12 @@
APP_VMA = DEFINED(APP_VMA) ? APP_VMA : 0x20000280;
APP_LENGTH = 0x1000;
ENTRY(app_main)
MEMORY { APP (rwx) : ORIGIN = APP_VMA, LENGTH = APP_LENGTH }
SECTIONS {
.app APP_VMA : {
KEEP(*(.text.entry)) *(.text .text.*) *(.rodata .rodata.*)
. = ALIGN(4); *(.data .data.*) . = ALIGN(4); *(.bss .bss.* COMMON) . = ALIGN(4);
} > APP
ASSERT(. <= APP_VMA + APP_LENGTH, "Triple VFO overlay app overflows the 4 KiB overlay")
/DISCARD/ : { *(.ARM.exidx*) *(.ARM.extab*) *(.eh_frame*) *(.comment) *(.note.*) }
}
+20
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@@ -0,0 +1,20 @@
#!/usr/bin/env bash
set -euo pipefail
APP="$(basename "$PWD")"
APP_NAME="Triple VFO"
APP_VER="1.0"
APP_VMA=${APP_VMA:-0x20000280}
OUT="${APP_NAME// /}"
CC=/opt/toolchain/bin/arm-none-eabi-gcc
OBJCOPY=/opt/toolchain/bin/arm-none-eabi-objcopy
command -v arm-none-eabi-gcc >/dev/null 2>&1 && { CC=arm-none-eabi-gcc; OBJCOPY=arm-none-eabi-objcopy; }
CFLAGS="-mcpu=cortex-m0plus -mthumb -Os -std=gnu11 -ffreestanding -fno-builtin -fno-common -fomit-frame-pointer -ffunction-sections -fdata-sections -Wall -Wextra"
LDFLAGS="-nostdlib -nostartfiles -T app.ld -Wl,--defsym,APP_VMA=${APP_VMA} -Wl,--gc-sections -Wl,-Map=${APP}.map -Wl,--build-id=none -Wl,--no-warn-rwx-segments"
rm -f ./*.app ./*.elf ./*.bin
"$CC" $CFLAGS $LDFLAGS "${APP}_app.c" -lgcc -o "${APP}.elf"
"$OBJCOPY" -O binary "${APP}.elf" "${APP}.bin"
python3 ../pack_app.py "${APP}.bin" "${OUT}.app" --name "$APP_NAME" --ver "$APP_VER" --vma "${APP_VMA}" >/dev/null
BYTES=$(wc -c < "${APP}.bin")
test "$BYTES" -le 4096
printf ' ✅ %-13s %4d B (%d%% of 4 KiB) -> %s.app\n' \
"$APP_NAME" "$BYTES" "$(( BYTES * 100 / 4096 ))" "$OUT"
+254
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@@ -0,0 +1,254 @@
/* Copyright 2026 Armel F4HWN
* SPDX-License-Identifier: Apache-2.0
*
* Triple VFO — modal overlay receiver/transmitter. A and B are the resident
* Main Display VFOs; C is an app-persistent memory channel. The resident ABI
* performs all RF sequencing while this blob owns the seven-line Tiny UI.
*/
#include <stdint.h>
#include <stdbool.h>
#include "../app_api.h"
#define TICK_MS 20u
#define LONG_MS 400u
#define CFG_MAGIC 0xC3u
#define VFO_COUNT 3u
#define MR_MAX 1024u
#define SCOPE_SAMPLES 43u
#define SCOPE_FLOOR 200u
static const app_api_t *A;
static app_trivfo_info_t vi[VFO_COUNT];
static uint8_t selected, state;
static uint16_t cChannel;
static bool running, fArm, txDenied, channelLabelOn, showFrequency;
static uint16_t scopeBuf[SCOPE_SAMPLES], scopeFloor;
static uint8_t scopeWrite, scopeReady, batteryTicks;
static bool scopeTx;
static char text[16];
/* Resident status.c uses this exact 8-column inverted glyph at x=69. Keep
* the overlay copy byte-for-byte identical so F has the same position and
* polarity as every other firmware screen. */
static const uint8_t fontF[8] = {
0x7f, 0x00, 0x76, 0x76, 0x76, 0x76, 0x7e, 0x7f
};
static uint8_t slen(const char *s){ uint8_t n=0; while(s[n])n++; return n; }
static bool copyName(char *d,const char *s){
uint8_t n=0;
while(n<10u){
uint8_t c=(uint8_t)s[n];
if(c==0u||c==0xffu) break;
d[n++]=(char)c;
}
while(n>0u&&d[n-1u]==' ') n--;
d[n]='\0';
return n>0u;
}
static char *put(char *o,const char *s){ while(*s)*o++=*s++; return o; }
static char *putu(char *o,uint32_t v){ char t[10]; int8_t n=0; do{t[n++]=(char)('0'+v%10u);v/=10u;}while(v); while(n--)*o++=t[n]; return o; }
static char *puti(char *o,int16_t v){ if(v<0){*o++='-';v=(int16_t)-v;} return putu(o,(uint16_t)v); }
static char *put3(char *o,uint16_t v){ *o++=(char)('0'+(v/100u)%10u); *o++=(char)('0'+(v/10u)%10u); *o++=(char)('0'+v%10u); return o; }
static char *put4(char *o,uint16_t v){ *o++=(char)('0'+(v/1000u)%10u); return put3(o,(uint16_t)(v%1000u)); }
static void formatFreq(char *s,uint32_t f){
char *o=putu(s,f/100000u); *o++='.'; f%=100000u;
uint32_t p=10000u; while(p){ *o++=(char)('0'+(f/p)%10u); p/=10u; } *o='\0';
}
static void formatChannel(char *s,const app_trivfo_info_t *v){
char *o=s;
if(v->channel<MR_MAX) o=put4(o,(uint16_t)(v->channel+1u));
else { *o++='F'; o=putu(o,(uint16_t)(v->channel-MR_MAX+1u)); }
*o='\0';
}
static void formatStep(char *s,uint16_t step){
char *o=putu(s,step/100u);
if(step%100u){ *o++='.'; *o++=(char)('0'+(step/10u)%10u); *o++=(char)('0'+step%10u); }
*o++='K'; *o='\0';
}
static void formatCode(char *s,const app_trivfo_info_t *v){
char *o=s;
if(v->code_type==1u){ o=putu(o,v->code_value/10u); *o++='.'; *o++=(char)('0'+v->code_value%10u); }
else if(v->code_type==2u||v->code_type==3u){
uint16_t n=v->code_value; *o++=(char)('0'+((n>>6)&7u)); *o++=(char)('0'+((n>>3)&7u)); *o++=(char)('0'+(n&7u)); *o++=(v->code_type==2u?'N':'I');
} else return formatStep(s,v->step);
*o='\0';
}
static void drawMeter(const app_trivfo_info_t *v){
int16_t dbm=v->rssi_dbm; if(dbm>-53)dbm=-53;
uint8_t s=0,over=0;
if(dbm>=-93){ s=9; over=(uint8_t)(dbm+93); if(over>40)over=40; }
else if(dbm>=-141) s=(uint8_t)((dbm+147)/6);
char *o=text; if(dbm>-100)*o++=' '; o=puti(o,dbm); o=put(o," dBm"); *o='\0';
A->print_tiny(text,2,1,false,true);
if(over){ o=text; *o++='+'; if(over<10)*o++='0'; o=putu(o,over); }
else { o=text; *o++='S'; o=putu(o,s); }
*o='\0'; A->print_normal(text,38,0,0);
uint8_t level=(uint8_t)(s+over/10u); if(level>13u)level=13u;
for(uint8_t i=0;i<level;i++){
uint8_t *p=&A->fb[0][62u+i*5u];
p[0]=0x3e; p[1]=(i<9u)?0x3e:0x22; p[2]=(i<9u)?0x3e:0x22; p[3]=0x3e;
}
}
static void drawAudioScope(void){
if(!scopeTx){
for(uint8_t i=0;i<SCOPE_SAMPLES;i++) scopeBuf[i]=SCOPE_FLOOR;
scopeFloor=SCOPE_FLOOR; scopeWrite=scopeReady=0; scopeTx=true;
}
if(scopeReady>=7u) scopeBuf[scopeWrite]=A->bk_read(0x64u);
else scopeReady++;
if(scopeBuf[scopeWrite]==0u) scopeBuf[scopeWrite]=SCOPE_FLOOR;
scopeWrite=(uint8_t)((scopeWrite+1u)%SCOPE_SAMPLES);
uint16_t min=scopeBuf[0], max=scopeBuf[0];
for(uint8_t i=1;i<SCOPE_SAMPLES;i++){
if(scopeBuf[i]<min) min=scopeBuf[i];
if(scopeBuf[i]>max) max=scopeBuf[i];
}
if(scopeFloor>min) scopeFloor=(uint16_t)(scopeFloor-((scopeFloor-min)>>3)-1u);
else scopeFloor=(uint16_t)(scopeFloor+2u);
uint16_t range=max>scopeFloor?(uint16_t)(max-scopeFloor):0u;
for(uint8_t i=0;i<SCOPE_SAMPLES;i++){
uint8_t idx=(uint8_t)((scopeWrite+i)%SCOPE_SAMPLES), height=0;
if(range>=50u){
uint16_t value=scopeBuf[idx]>scopeFloor?(uint16_t)(scopeBuf[idx]-scopeFloor):0u;
height=(uint8_t)((uint32_t)value*7u/range);
}
uint8_t mask=height?(uint8_t)((0x7fu<<(7u-height))&0x7fu):0x40u;
A->fb[0][i*3u]=mask; A->fb[0][i*3u+1u]=mask;
}
}
static void drawVfo(uint8_t n){
const app_trivfo_info_t *v=&vi[n];
uint8_t mainLine=(uint8_t)(n*2u+1u), techLine=(uint8_t)(mainLine+1u);
uint8_t techY=(uint8_t)(techLine*8u+1u);
formatChannel(text,v);
if(!(v->flags&APP_TRIVFO_RECEIVING)||channelLabelOn)
A->print_inverse(text,2,mainLine,false,true,(uint8_t)(slen(text)*4u+3u));
if(n==selected && txDenied)
A->print_tiny("TX DISABLE",22,(uint8_t)(mainLine*8u+1u),false,true);
else {
bool useName=false;
if(v->channel<MR_MAX&&!showFrequency) useName=copyName(text,v->name);
if(!useName) formatFreq(text,v->frequency);
if(n==selected)
A->print_bold(text,22,0,mainLine);
else
A->print_normal(text,22,0,mainLine);
}
const char *mod=v->modulation==0u?"FM":v->modulation==1u?"AM":v->modulation==2u?"USB":v->modulation==3u?"BYP":v->modulation==4u?"RAW":"?";
A->print_tiny(mod,3,techY,false,true);
static const char *const power[7]={"LOW1","LOW2","LOW3","LOW4","LOW5","MID","HIGH"};
uint8_t p=(v->power>=1u&&v->power<=7u)?(uint8_t)(v->power-1u):0u;
A->print_tiny(power[p],24,techY,false,true);
if(v->flags&APP_TRIVFO_USER_POWER){
A->fb[techLine][19]=0x3e; A->fb[techLine][20]=0x1c; A->fb[techLine][21]=0x08;
}
if(v->offset_direction==1u) A->print_normal("+",41,0,techLine);
else if(v->offset_direction==2u) A->print_normal("-",41,0,techLine);
if(v->reverse) A->print_tiny("R",51,techY,false,true);
if(v->code_type==1u){ A->print_tiny("CT",58,techY,false,true); formatCode(text,v); A->print_tiny(text,68,techY,false,true); }
else if(v->code_type==2u||v->code_type==3u){ A->print_tiny("DC",58,techY,false,true); formatCode(text,v); A->print_tiny(text,68,techY,false,true); }
else { formatStep(text,v->step); A->print_tiny(text,58,techY,false,true); }
A->print_tiny(v->bandwidth==0u?"WIDE":v->bandwidth==1u?"NAR":"NAR+",91,techY,false,true);
text[0]='S'; text[1]='Q'; text[2]='L'; text[3]=(char)('0'+(v->squelch%10u)); text[4]='\0';
A->print_tiny(text,110,techY,false,true);
}
static void draw(void){
for(uint8_t i=0;i<VFO_COUNT;i++) {
A->trivfo_get(i,&vi[i]);
/* The resident scanner can temporarily select the VFO carrying the
* reception. Mirror that selection locally so the bold main field
* follows it immediately. */
if(vi[i].flags&APP_TRIVFO_SELECTED) selected=i;
}
A->display_clear(); A->status_clear();
/* Keep the application title in the resident upper-left position. */
A->draw_battery();
A->print_inverse("TRIPLE VFO",2,0,true,true,42);
if(fArm){ for(uint8_t i=0;i<8u;i++) A->status_line[69u+i]=fontF[i]; }
for(uint8_t i=0;i<VFO_COUNT;i++) drawVfo(i);
if(state==APP_TRIVFO_TX_STATE&&(vi[selected].flags&APP_TRIVFO_AUDIO_BAR))
drawAudioScope();
else {
scopeTx=false;
for(uint8_t i=0;i<VFO_COUNT;i++)
if(vi[i].flags&APP_TRIVFO_RECEIVING){ drawMeter(&vi[i]); break; }
}
A->blit_status(); A->blit_full();
}
static void selectNext(void){ selected=(uint8_t)((selected+1u)%VFO_COUNT); A->trivfo_select(selected); }
static void toggleNameFrequency(void){ showFrequency=!showFrequency; }
static void stepSelected(uint8_t key){ int8_t d=A->nav_dir(key); uint16_t ch=A->trivfo_step(selected,d); if(selected==2u&&ch!=0xFFFFu)cChannel=ch; }
static void loadCfg(void){ uint8_t c[4]; A->cfg_load(c,4); cChannel=(c[0]==CFG_MAGIC)?(uint16_t)(c[1]|((uint16_t)c[2]<<8)):0xFFFFu; }
static void saveCfg(void){ uint8_t c[3]={CFG_MAGIC,(uint8_t)cChannel,(uint8_t)(cChannel>>8)}; A->cfg_save(c,3); }
__attribute__((section(".text.entry"),used))
void app_main(const app_api_t *api){
A=api; running=true; fArm=false; txDenied=false; channelLabelOn=true; showFrequency=false; selected=scopeWrite=scopeReady=batteryTicks=0; scopeTx=false; scopeFloor=SCOPE_FLOOR; loadCfg();
cChannel=A->trivfo_enter(cChannel); A->trivfo_select(0); A->backlight_on();
uint8_t held=APP_KEY_INVALID, blinkTicks=0; uint16_t heldMs=0; bool longDone=false, ptt=false;
while(running){
uint8_t key=A->get_key();
if(key==APP_KEY_PTT){
if(!ptt){ ptt=true; txDenied=A->trivfo_ptt(true)!=0; }
} else if(ptt){ ptt=false; A->trivfo_ptt(false); txDenied=false; }
if(key==APP_KEY_INVALID||key==APP_KEY_PTT){
if(held!=APP_KEY_INVALID&&!longDone){
if(held==APP_KEY_F) fArm=!fArm;
else if(held==APP_KEY_1&&fArm){ fArm=false; toggleNameFrequency(); }
else if(held==APP_KEY_2&&fArm){ fArm=false; selectNext(); }
else if(held==APP_KEY_EXIT) running=false;
}
held=APP_KEY_INVALID; heldMs=0; longDone=false;
} else if(key!=held){
held=key; heldMs=0; longDone=false;
if(key==APP_KEY_UP||key==APP_KEY_DOWN){ stepSelected(key); longDone=true; }
} else {
heldMs=(uint16_t)(heldMs+TICK_MS);
if((key==APP_KEY_UP||key==APP_KEY_DOWN)&&heldMs>=300u){ stepSelected(key); }
else if(!longDone&&heldMs>=LONG_MS){
longDone=true;
/* Long-1 toggles name/frequency and Long-2 selects the next
* VFO; both are deliberately independent of F. */
if(key==APP_KEY_1){ fArm=false; toggleNameFrequency(); }
else if(key==APP_KEY_2){ fArm=false; selectNext(); }
}
}
state=A->trivfo_tick();
if(state==APP_TRIVFO_RX){
if(++blinkTicks>=25u){ blinkTicks=0; channelLabelOn=!channelLabelOn; }
} else { blinkTicks=0; channelLabelOn=true; }
draw();
/* Match MAIN: no loaded-voltage samples during TX, then allow one
* second for the pack to recover before refreshing the four-sample
* battery average. */
if(state==APP_TRIVFO_TX_STATE) batteryTicks=0;
else if(++batteryTicks>=50u){ batteryTicks=0; A->battery_sample(); }
A->delay_ms(TICK_MS); A->backlight_update();
}
if(ptt)
A->trivfo_ptt(false);
saveCfg();
A->trivfo_leave();
}