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13 Commits

Author SHA1 Message Date
philippe44
2afbee7cb1 add SH1122 - release 2023-11-16 21:43:56 -08:00
philippe44
bbf9a3af70 Merge branch 'master-v4.3' of https://github.com/sle118/squeezelite-esp32 into master-v4.3 2023-11-13 22:30:51 -08:00
philippe44
a9ca4c4450 attempt to fix cspot track issues - release 2023-11-13 22:30:45 -08:00
github-actions
55bce084eb Update prebuilt objects [skip actions] 2023-11-09 21:49:08 +00:00
philippe44
d31697e7ef force pad_select for gpio use in dac_controlset - release 2023-11-09 13:47:08 -08:00
philippe44
e830b4db73 Merge branch 'master-v4.3' of https://github.com/sle118/squeezelite-esp32 into master-v4.3 2023-11-09 13:42:11 -08:00
philippe44
8fe21327b8 Update README.md 2023-11-08 16:54:54 -08:00
philippe44
3f487366ee Update README.md 2023-11-08 16:51:47 -08:00
philippe44
b875585aec Merge branch 'master-v4.3' of https://github.com/sle118/squeezelite-esp32 into master-v4.3 2023-11-08 16:37:53 -08:00
philippe44
b46fccfc83 execute dac_controlset even w/o i2c (for gpio) - release 2023-11-08 16:37:49 -08:00
philippe44
655c17fb29 Update README.md 2023-11-08 11:36:29 -08:00
philippe44
b8bda0435a Update README.md 2023-11-08 11:34:17 -08:00
github-actions
dc5cb31efb Update prebuilt objects [skip actions] 2023-11-08 06:18:54 +00:00
29 changed files with 299 additions and 81 deletions

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@@ -1,3 +1,9 @@
2023-11-09
- force gpio_pad_select_gpio in dac_controlset in case somebody uses UART gpio's (or other pre-programmed)
2023-11-08
- execute dac_controlset even whne there is no i2s (for gpio)
2023-11-07
- led-vu gain + misc fixes
- bump plugin version to 0.600

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@@ -189,13 +189,19 @@ if "model" is not set or is not recognized, then default "I2S" is used. The opti
So far, TAS57xx, TAS5713, AC101, WM8978 and ES8388 are recognized models where the proper init sequence/volume/power controls are sent. For other codecs that might require an I2C commands, please use the parameter "dac_controlset" that allows definition of simple commands to be sent over i2c for init, power, speaker and headset on and off using a JSON syntax:
```json
{ <command>: [ {"reg":<register>,"val":<value>,"mode":<nothing>|"or"|"and"}, ... {{"reg":<register>,"val":<value>,"mode":<nothing>|"or"|"and"} ],
<command>: [ {"reg":<register>,"val":<value>,"mode":<nothing>|"or"|"and"}, ... {{"reg":<register>,"val":<value>,"mode":<nothing>|"or"|"and"} ],
{ <command>: [ <item1>, <item2>, ... <item3> ],
<command>: [ <item1>, <item2>, ... <item3> ],
... }
```
Where `<command>` is one of init, poweron, poweroff, speakeron, speakeroff, headseton, headsetoff
Where `<command>` is one of init, poweron, poweroff, speakeron, speakeroff, headseton, headsetoff (it **must** be an array even for a single item). Item is any of the following elements
```
{"reg":<register>,"val":<value>,"mode":<nothing>|"or"|"and"}
{"gpio":<gpio>,"level":0|1}
{"delay":<ms>}
```
This is standard JSON notation, so if you are not familiar with it, Google is your best friend. Be aware that the '...' means you can have as many entries as you want, it's not part of the syntax. Every section is optional, but it does not make sense to set i2c in the 'dac_config' parameter and not setting anything here.
This is standard JSON notation, so if you are not familiar with it, Google is your best friend. Be aware that the '...' means you can have as many entries as you want, it's not part of the syntax. Every section is optional, but it does not make sense to set i2c in the 'dac_config' parameter and not setting anything here. The parameter 'mode' allows to *or* the register with the value or to *and* it. Don't set 'mode' if you simply want to write. The 'val parameter can be an array [v1, v2,...] to write a serie of bytes in a single i2c burst (in that case 'mode' is ignored). **Note that all values must be decimal**. You can use a validator like [this](https://jsonlint.com) to verify your syntax
The `reg` key allow to write registers on i2c bus. The parameter `mode` allows to *or* the register with the value or to *and* it. Don't set `mode` if you simply want to write. The `val` parameter can be an array [v1, v2,...] to write a serie of bytes in a single i2c burst (in that case 'mode' is ignored). **Note that all values must be decimal**. You can use a validator like [this](https://jsonlint.com) to verify your syntax. The `gpio` key is simply to set a gpio as part of DAC action and `delay` allows a pause between elements.
The 'power' command is used when powering on/off the DAC after the idle period (see -C option of squeezelite) and the 'speaker/headset' commands are sent when switching between speakers and headsets (see headset jack detection).

182
components/display/SH1122.c Normal file
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@@ -0,0 +1,182 @@
/**
* Copyright (c) 2017-2018 Tara Keeling
* 2020 Philippe G.
*
* This software is released under the MIT License.
* https://opensource.org/licenses/MIT
*/
#include <stdio.h>
#include <string.h>
#include <stdint.h>
#include <stdbool.h>
#include <esp_heap_caps.h>
#include <esp_log.h>
#include "gds.h"
#include "gds_private.h"
#define SHADOW_BUFFER
#define PAGE_BLOCK 1024
#define min(a,b) (((a) < (b)) ? (a) : (b))
static char TAG[] = "SH1122";
struct PrivateSpace {
uint8_t *iRAM, *Shadowbuffer;
uint8_t PageSize;
};
// Functions are not declared to minimize # of lines
static void SetColumnAddress( struct GDS_Device* Device, uint8_t Start, uint8_t End ) {
Device->WriteCommand( Device, 0x10 | (Start >> 4) );
Device->WriteCommand( Device, 0x00 | (Start & 0x0f) );
}
static void SetRowAddress( struct GDS_Device* Device, uint8_t Start, uint8_t End ) {
Device->WriteCommand( Device, 0xB0 );
Device->WriteCommand( Device, Start );
}
static void Update( struct GDS_Device* Device ) {
struct PrivateSpace *Private = (struct PrivateSpace*) Device->Private;
// RAM is by columns of 4 pixels ...
SetColumnAddress( Device, 0, Device->Width / 4 - 1);
#ifdef SHADOW_BUFFER
uint16_t *optr = (uint16_t*) Private->Shadowbuffer, *iptr = (uint16_t*) Device->Framebuffer;
bool dirty = false;
for (int r = 0, page = 0; r < Device->Height; r++) {
// look for change and update shadow (cheap optimization = width always / by 2)
for (int c = Device->Width / 2 / 2; --c >= 0;) {
if (*optr != *iptr) {
dirty = true;
*optr = *iptr;
}
iptr++; optr++;
}
// one line done, check for page boundary
if (++page == Private->PageSize) {
if (dirty) {
SetRowAddress( Device, r - page + 1, r );
if (Private->iRAM) {
memcpy(Private->iRAM, Private->Shadowbuffer + (r - page + 1) * Device->Width / 2, page * Device->Width / 2 );
Device->WriteData( Device, Private->iRAM, Device->Width * page / 2 );
} else {
Device->WriteData( Device, Private->Shadowbuffer + (r - page + 1) * Device->Width / 2, page * Device->Width / 2);
}
dirty = false;
}
page = 0;
}
}
#else
SetRowAddress( Device, 0, Device->Height - 1 );
for (int r = 0; r < Device->Height; r += Private->PageSize) {
if (Private->iRAM) {
memcpy(Private->iRAM, Device->Framebuffer + r * Device->Width / 2, Private->PageSize * Device->Width / 2 );
Device->WriteData( Device, Private->iRAM, Private->PageSize * Device->Width / 2 );
} else {
Device->WriteData( Device, Device->Framebuffer + r * Device->Width / 2, Private->PageSize * Device->Width / 2 );
}
}
#endif
}
static void DrawPixelFast4( struct GDS_Device* Device, int X, int Y, int Color ) {
uint8_t* FBOffset = Device->Framebuffer + ( (Y * Device->Width >> 1) + (X >> 1));
*FBOffset = X & 0x01 ? ((*FBOffset & 0xf0) | (Color & 0x0f)) : (*FBOffset & 0x0f) | ((Color & 0x0f) << 4);
}
static void SetLayout( struct GDS_Device* Device, struct GDS_Layout *Layout ) {
if (Layout->HFlip) {
Device->WriteCommand( Device, 0x40 + 0x20 );
Device->WriteCommand( Device, 0xA1 );
} else {
Device->WriteCommand( Device, 0x40 + 0x00 );
Device->WriteCommand( Device, 0xA0 );
}
Device->WriteCommand( Device, Layout->VFlip ? 0xC8 : 0xC0 );
Device->WriteCommand( Device, Layout->Invert ? 0xA7 : 0xA6 );
}
static void DisplayOn( struct GDS_Device* Device ) { Device->WriteCommand( Device, 0xAF ); }
static void DisplayOff( struct GDS_Device* Device ) { Device->WriteCommand( Device, 0xAE ); }
static void SetContrast( struct GDS_Device* Device, uint8_t Contrast ) {
Device->WriteCommand( Device, 0x81 );
Device->WriteCommand( Device, Contrast );
}
static bool Init( struct GDS_Device* Device ) {
struct PrivateSpace *Private = (struct PrivateSpace*) Device->Private;
// find a page size that is not too small is an integer of height
Private->PageSize = min(8, PAGE_BLOCK / (Device->Width / 2));
while (Private->PageSize && Device->Height != (Device->Height / Private->PageSize) * Private->PageSize) Private->PageSize--;
#ifdef SHADOW_BUFFER
Private->Shadowbuffer = malloc( Device->FramebufferSize );
memset(Private->Shadowbuffer, 0xFF, Device->FramebufferSize);
#endif
// only use iRAM for SPI
if (Device->IF == GDS_IF_SPI) {
Private->iRAM = heap_caps_malloc( Private->PageSize * Device->Width / 2, MALLOC_CAP_INTERNAL | MALLOC_CAP_DMA );
}
ESP_LOGI(TAG, "SH1122 page %u, iRAM %p", Private->PageSize, Private->iRAM);
// need to be off and disable display RAM
Device->DisplayOff( Device );
Device->WriteCommand( Device, 0xA5 );
// Display Offset
Device->WriteCommand( Device, 0xD3 );
Device->WriteCommand( Device, 0 );
// set flip modes
struct GDS_Layout Layout = { };
Device->SetLayout( Device, &Layout );
// set Clocks => check value
Device->WriteCommand( Device, 0xD5 );
Device->WriteCommand( Device, ( 0x04 << 4 ) | 0x00 );
// MUX Ratio => fixed
Device->WriteCommand( Device, 0xA8 );
Device->WriteCommand( Device, Device->Height - 1);
// no Display Inversion
Device->WriteCommand( Device, 0xA6 );
// gone with the wind
Device->WriteCommand( Device, 0xA4 );
Device->DisplayOn( Device );
Device->Update( Device );
return true;
}
static const struct GDS_Device SH1122 = {
.DisplayOn = DisplayOn, .DisplayOff = DisplayOff, .SetContrast = SetContrast,
.DrawPixelFast = DrawPixelFast4,
.SetLayout = SetLayout,
.Update = Update, .Init = Init,
.Mode = GDS_GRAYSCALE, .Depth = 4,
.HighNibble = true,
};
struct GDS_Device* SH1122_Detect(char *Driver, struct GDS_Device* Device) {
if (!strcasestr(Driver, "SH1122")) return NULL;
if (!Device) Device = calloc(1, sizeof(struct GDS_Device));
*Device = SH1122;
return Device;
}

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@@ -71,8 +71,8 @@ static void Update( struct GDS_Device* Device ) {
if (dirty) {
uint16_t *optr = (uint16_t*) Private->iRAM, *iptr = (uint16_t*) (Private->Shadowbuffer + (r - page + 1) * Device->Width / 2);
SetRowAddress( Device, r - page + 1, r );
// need byte swapping
for (int i = page * Device->Width / 2 / 2; --i >= 0; iptr++) *optr++ = (*iptr >> 8) | (*iptr << 8);
//memcpy(Private->iRAM, Private->Shadowbuffer + (r - page + 1) * Device->Width / 2, page * Device->Width / 2 );
Device->WriteCommand( Device, 0x5c );
Device->WriteData( Device, Private->iRAM, Device->Width * page / 2 );
dirty = false;
@@ -84,14 +84,10 @@ static void Update( struct GDS_Device* Device ) {
for (int r = 0; r < Device->Height; r += Private->PageSize) {
SetRowAddress( Device, r, r + Private->PageSize - 1 );
Device->WriteCommand( Device, 0x5c );
if (Private->iRAM) {
uint16_t *optr = (uint16_t*) Private->iRAM, *iptr = (uint16_t*) (Device->Framebuffer + r * Device->Width / 2);
for (int i = Private->PageSize * Device->Width / 2 / 2; --i >= 0; iptr++) *optr++ = (*iptr >> 8) | (*iptr << 8);
//memcpy(Private->iRAM, Device->Framebuffer + r * Device->Width / 2, Private->PageSize * Device->Width / 2 );
Device->WriteData( Device, Private->iRAM, Private->PageSize * Device->Width / 2 );
} else {
Device->WriteData( Device, Device->Framebuffer + r * Device->Width / 2, Private->PageSize * Device->Width / 2 );
}
// need byte swapping
uint16_t *optr = (uint16_t*) Private->iRAM, *iptr = (uint16_t*) (Device->Framebuffer + r * Device->Width / 2);
for (int i = Private->PageSize * Device->Width / 2 / 2; --i >= 0; iptr++) *optr++ = (*iptr >> 8) | (*iptr << 8);
Device->WriteData( Device, Private->iRAM, Private->PageSize * Device->Width / 2 );
}
#endif
}

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@@ -213,37 +213,65 @@ void GDS_DrawBitmapCBR(struct GDS_Device* Device, uint8_t *Data, int Width, int
iptr += Height;
}
}
} else if (Device->Depth == 4) {
} else if (Device->Depth == 4) {
uint8_t *optr = Device->Framebuffer;
int LineLen = Device->Width >> 1;
Height >>= 3;
Color &= 0x0f;
for (int i = Width * Height, r = 0, c = 0; --i >= 0;) {
uint8_t Byte = BitReverseTable256[*Data++];
// we need to linearize code to let compiler better optimize
if (c & 0x01) {
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen;
} else {
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen;
}
// end of a column, move to next one
if (++r == Height) { c++; r = 0; optr = Device->Framebuffer + (c >> 1); }
if (Device->HighNibble) {
for (int i = Width * Height, r = 0, c = 0; --i >= 0;) {
uint8_t Byte = BitReverseTable256[*Data++];
// we need to linearize code to let compiler better optimize
if (c & 0x01) {
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen;
} else {
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen;
}
// end of a column, move to next one
if (++r == Height) { c++; r = 0; optr = Device->Framebuffer + (c >> 1); }
}
} else {
for (int i = Width * Height, r = 0, c = 0; --i >= 0;) {
uint8_t Byte = BitReverseTable256[*Data++];
// we need to linearize code to let compiler better optimize
if (c & 0x01) {
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0x0f) | (((Byte & 0x01)*Color)<<4); optr += LineLen;
} else {
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen; Byte >>= 1;
*optr = (*optr & 0xf0) | (((Byte & 0x01)*Color)); optr += LineLen;
}
// end of a column, move to next one
if (++r == Height) { c++; r = 0; optr = Device->Framebuffer + (c >> 1); }
}
}
} else if (Device->Depth == 8) {
uint8_t *optr = Device->Framebuffer;

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@@ -98,6 +98,7 @@ struct GDS_Device {
uint16_t Width, TextWidth;
uint16_t Height;
uint8_t Depth, Mode;
bool HighNibble;
uint8_t Alloc;
uint8_t* Framebuffer;

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@@ -63,6 +63,7 @@ static EXT_RAM_ATTR struct {
} displayer;
static const char *known_drivers[] = {"SH1106",
"SH1122",
"SSD1306",
"SSD1322",
"SSD1326",
@@ -79,8 +80,8 @@ static void displayer_task(void *args);
static void display_sleep(void);
struct GDS_Device *display;
extern GDS_DetectFunc SSD1306_Detect, SSD132x_Detect, SH1106_Detect, SSD1675_Detect, SSD1322_Detect, SSD1351_Detect, ST77xx_Detect, ILI9341_Detect;
GDS_DetectFunc *drivers[] = { SH1106_Detect, SSD1306_Detect, SSD132x_Detect, SSD1675_Detect, SSD1322_Detect, SSD1351_Detect, ST77xx_Detect, ILI9341_Detect, NULL };
extern GDS_DetectFunc SSD1306_Detect, SSD132x_Detect, SH1106_Detect, SH1122_Detect, SSD1675_Detect, SSD1322_Detect, SSD1351_Detect, ST77xx_Detect, ILI9341_Detect;
GDS_DetectFunc *drivers[] = { SH1106_Detect, SH1122_Detect, SSD1306_Detect, SSD132x_Detect, SSD1675_Detect, SSD1322_Detect, SSD1351_Detect, ST77xx_Detect, ILI9341_Detect, NULL };
/****************************************************************************************
*

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@@ -361,7 +361,7 @@ void services_init(void) {
}
#endif
// set potential power GPIO on chip first in case expanders are power using these
// set potential power GPIO on chip first in case expanders are powered using these
parse_set_GPIO(set_chip_power_gpio);
// shared I2C bus

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@@ -201,7 +201,7 @@ void SpircHandler::handleFrame(std::vector<uint8_t>& data) {
break;
}
case MessageType_kMessageTypeReplace: {
CSPOT_LOG(debug, "Got replace frame");
CSPOT_LOG(debug, "Got replace frame %d", playbackState->remoteTracks.size());
playbackState->syncWithRemote();
// 1st track is the current one, but update the position

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@@ -591,15 +591,14 @@ bool TrackQueue::updateTracks(uint32_t requestedPosition, bool initial) {
std::scoped_lock lock(tracksMutex);
bool cleared = true;
// Copy requested track list
currentTracks = playbackState->remoteTracks;
currentTracksIndex = playbackState->innerFrame.state.playing_track_index;
if (initial) {
// Clear preloaded tracks
preloadedTracks.clear();
// Copy requested track list
currentTracks = playbackState->remoteTracks;
currentTracksIndex = playbackState->innerFrame.state.playing_track_index;
if (currentTracksIndex < currentTracks.size()) {
// Push a song on the preloaded queue
queueNextTrack(0, requestedPosition);
@@ -609,28 +608,24 @@ bool TrackQueue::updateTracks(uint32_t requestedPosition, bool initial) {
notifyPending = true;
playableSemaphore->give();
} else {
// Copy requested track list
currentTracks = playbackState->remoteTracks;
// try to not re-load track if we are still loading it
if (preloadedTracks[0]->loading) {
} else if (preloadedTracks[0]->loading) {
// try to not re-load track if we are still loading it
// remove everything except first track
preloadedTracks.erase(preloadedTracks.begin() + 1, preloadedTracks.end());
// Push a song on the preloaded queue
CSPOT_LOG(info, "Keeping current track");
CSPOT_LOG(info, "Keeping current track %d", currentTracksIndex);
queueNextTrack(1);
cleared = false;
} else {
// Clear preloaded tracks
preloadedTracks.clear();
} else {
// Clear preloaded tracks
preloadedTracks.clear();
// Push a song on the preloaded queue
CSPOT_LOG(info, "Re-loading current track");
queueNextTrack(0, requestedPosition);
}
// Push a song on the preloaded queue
CSPOT_LOG(info, "Re-loading current track");
queueNextTrack(0, requestedPosition);
}
return cleared;

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@@ -61,7 +61,6 @@ static bool init(char *config, int i2c_port_num, i2s_config_t *i2s_config, bool
char *p;
i2c_addr = adac_init(config, i2c_port_num);
if (!i2c_addr) return true;
ESP_LOGI(TAG, "DAC on I2C @%d", i2c_addr);
@@ -137,6 +136,7 @@ bool i2c_json_execute(char *set) {
if ((action = cJSON_GetObjectItemCaseSensitive(item, "gpio")) != NULL) {
cJSON *level = cJSON_GetObjectItemCaseSensitive(item, "level");
ESP_LOGI(TAG, "set GPIO %d at %d", action->valueint, level->valueint);
if (action->valueint < GPIO_NUM_MAX) gpio_pad_select_gpio(action->valueint);
gpio_set_direction_x(action->valueint, GPIO_MODE_OUTPUT);
gpio_set_level_x(action->valueint, level->valueint);
continue;

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@@ -70,6 +70,8 @@ declare function getStatus(): {};
declare function getStatus(): {};
declare function getStatus(): {};
declare function getStatus(): {};
declare function getStatus(): {};
declare function getRadioButton(entry: any): string;
declare function getRadioButton(entry: any): string;
declare function getRadioButton(entry: any): string;
declare function getRadioButton(entry: any): string;
@@ -214,6 +216,7 @@ declare function pushStatus(): void;
declare function pushStatus(): void;
declare function pushStatus(): void;
declare function pushStatus(): void;
declare function pushStatus(): void;
declare let sd: {};
declare let rf: boolean;
declare function refreshStatus(): void;

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@@ -1,5 +1,5 @@
target_add_binary_data( __idf_wifi-manager webapp/dist/css/index.4bbe29a78a667faa2b6f.css.gz BINARY)
target_add_binary_data( __idf_wifi-manager webapp/dist/favicon-32x32.png BINARY)
target_add_binary_data( __idf_wifi-manager webapp/dist/index.html.gz BINARY)
target_add_binary_data( __idf_wifi-manager webapp/dist/js/index.5fd84f.bundle.js.gz BINARY)
target_add_binary_data( __idf_wifi-manager webapp/dist/js/node_vendors.5fd84f.bundle.js.gz BINARY)
target_add_binary_data( __idf_wifi-manager webapp/dist/js/index.0ba488.bundle.js.gz BINARY)
target_add_binary_data( __idf_wifi-manager webapp/dist/js/node_vendors.0ba488.bundle.js.gz BINARY)

View File

@@ -6,29 +6,29 @@ extern const uint8_t _favicon_32x32_png_start[] asm("_binary_favicon_32x32_png_s
extern const uint8_t _favicon_32x32_png_end[] asm("_binary_favicon_32x32_png_end");
extern const uint8_t _index_html_gz_start[] asm("_binary_index_html_gz_start");
extern const uint8_t _index_html_gz_end[] asm("_binary_index_html_gz_end");
extern const uint8_t _index_5fd84f_bundle_js_gz_start[] asm("_binary_index_5fd84f_bundle_js_gz_start");
extern const uint8_t _index_5fd84f_bundle_js_gz_end[] asm("_binary_index_5fd84f_bundle_js_gz_end");
extern const uint8_t _node_vendors_5fd84f_bundle_js_gz_start[] asm("_binary_node_vendors_5fd84f_bundle_js_gz_start");
extern const uint8_t _node_vendors_5fd84f_bundle_js_gz_end[] asm("_binary_node_vendors_5fd84f_bundle_js_gz_end");
extern const uint8_t _index_0ba488_bundle_js_gz_start[] asm("_binary_index_0ba488_bundle_js_gz_start");
extern const uint8_t _index_0ba488_bundle_js_gz_end[] asm("_binary_index_0ba488_bundle_js_gz_end");
extern const uint8_t _node_vendors_0ba488_bundle_js_gz_start[] asm("_binary_node_vendors_0ba488_bundle_js_gz_start");
extern const uint8_t _node_vendors_0ba488_bundle_js_gz_end[] asm("_binary_node_vendors_0ba488_bundle_js_gz_end");
const char * resource_lookups[] = {
"/css/index.4bbe29a78a667faa2b6f.css.gz",
"/favicon-32x32.png",
"/index.html.gz",
"/js/index.5fd84f.bundle.js.gz",
"/js/node_vendors.5fd84f.bundle.js.gz",
"/js/index.0ba488.bundle.js.gz",
"/js/node_vendors.0ba488.bundle.js.gz",
""
};
const uint8_t * resource_map_start[] = {
_index_4bbe29a78a667faa2b6f_css_gz_start,
_favicon_32x32_png_start,
_index_html_gz_start,
_index_5fd84f_bundle_js_gz_start,
_node_vendors_5fd84f_bundle_js_gz_start
_index_0ba488_bundle_js_gz_start,
_node_vendors_0ba488_bundle_js_gz_start
};
const uint8_t * resource_map_end[] = {
_index_4bbe29a78a667faa2b6f_css_gz_end,
_favicon_32x32_png_end,
_index_html_gz_end,
_index_5fd84f_bundle_js_gz_end,
_node_vendors_5fd84f_bundle_js_gz_end
_index_0ba488_bundle_js_gz_end,
_node_vendors_0ba488_bundle_js_gz_end
};

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@@ -1,6 +1,6 @@
/***********************************
webpack_headers
dist/css/index.4bbe29a78a667faa2b6f.css.gz,dist/favicon-32x32.png,dist/index.html.gz,dist/js/index.5fd84f.bundle.js.gz,dist/js/node_vendors.5fd84f.bundle.js.gz
dist/css/index.4bbe29a78a667faa2b6f.css.gz,dist/favicon-32x32.png,dist/index.html.gz,dist/js/index.0ba488.bundle.js.gz,dist/js/node_vendors.0ba488.bundle.js.gz
***********************************/
#pragma once
#include <inttypes.h>

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