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29 Commits
Author SHA1 Message Date
kuba 780d52c8d8 some code refactors 2026-03-19 22:30:32 +01:00
kuba 731f69ffa1 move squelch 2026-03-19 21:49:21 +01:00
kuba bd094dc978 Remove CN/SNR 2026-03-19 21:34:06 +01:00
kuba 5a1a84f431 changes 2026-02-25 16:39:21 +01:00
kuba 562427df20 upstream 2026-02-24 22:12:26 +01:00
kuba 9e5bddccfa In Poland, we say `to źes dowalił do pieca" 2026-02-20 21:39:24 +01:00
kuba c770decab7 fix bug 2026-02-20 14:16:17 +01:00
kuba 63c7bd5640 better i2c protocol implentation 2026-02-20 13:51:44 +01:00
kuba c1164145e9 crc in protocol 2026-02-19 23:12:34 +01:00
kuba eaaae92fe3 change signal logic 2026-02-19 15:37:42 +01:00
kuba 1aa495bc3e upstream sync 2026-02-19 10:24:24 +01:00
kuba c327c7d9d0 i2c control persistance byte 2026-02-18 21:59:24 +01:00
kuba ebeb452ded Some changes 2026-02-18 18:39:50 +01:00
kuba 015079b151 dumbass 2026-02-18 16:50:58 +01:00
kuba d1294914ce Clean ups, and more features 2026-02-18 16:28:52 +01:00
kuba 9e6cf2bd72 Goodbye, "AM AGC" 2026-02-18 12:52:49 +01:00
kuba 21fd8d00ec move some things around 2026-02-18 10:38:19 +01:00
kuba 9cf4593517 that's it for today 2026-02-17 23:16:46 +01:00
kuba 140f88d371 Clean ups, again (also waiting on a new issue on upstream) 2026-02-17 21:03:32 +01:00
kuba ae194ed052 major clean ups in tft_espi 2026-02-17 19:02:21 +01:00
kuba 57aa865b2b optimize one i2c write 2026-02-17 10:44:32 +01:00
kuba af0e177c7d copy some stuff from upstream 2026-02-17 09:43:26 +01:00
kuba 01aa31a1fa Undo that 2026-02-16 09:08:29 +01:00
kuba 5e6371b409 i2c raw control 2026-02-14 22:39:21 +01:00
kuba d79358fa48 Lots of minor changes 2026-02-14 18:29:55 +01:00
kuba 8d5e41846b redo spi freq stuff 2026-02-14 15:04:39 +01:00
kuba f5c810f42e fix some font alloc stuff 2026-02-14 00:20:56 +01:00
kuba 3668854cd4 Partially rework fonts (again) 2026-02-13 23:57:42 +01:00
kuba 2d03316910 updates, and on dp666 the date should be wrong on startup 2026-01-23 19:17:20 +01:00
58 changed files with 9002 additions and 11711 deletions
+317
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@@ -0,0 +1,317 @@
# PC Control Interface
The PC Control Interface of the firmware allows the PC to do useful things with the radio directly.
## Invoking
Any time, ever, the PC ("Serial device") can send a "~/" on the data line, once the radio is ready for command (or already is), a response will get received: [0x01 0xFF].
That means, we can send commands to the radio now.
## Packet
Every single packet starts with its length (MSB of length is reserved for optional CRC8 at end of packet, see [CRC](#crc)), example: [0x02 0xAA 0x55] [0x03 0x00 0x01 0x02]
The byte after the lenght is expected to be the command, which will be defined below
### Commands
#### 0 - Set clock
This sets the I2C clock.
4 bytes after command should represent the clock to set as commanded.
##### Example
Set clock to 400 kHz
[0x05] - Length
[0x00] - Command
[0x00] - MSB Byte of clock value
[0x06]
[0x1A]
[0x80] - LSB Byte of the clock value
##### Response
[0x01] - Length
[0x00] - Response to command 0
#### 1 - Send I2C data
This command sends out the provided data to a provided address over I2C
First byte after the command should be the address, and the rest until the end of the command shall be the data itself
##### Structure
[0x03] - Length
[0x01] - Command
[X] - Device address
[X] - Address to set on the device (data)
[X] - Address contents on the device (data)
##### Response
[0x02] - Length
[0x01] - Response to command 0
[X] - Arbitrary status value which matches the value of Arduino's endTransmission function
#### 2 - Send + Receive I2C data
This command sends out the provided data to a provided address over I2C, but then sends a repeated start and requests a number of bytes which is provided by the command
First byte after the command should be the address, the following byte should be the lenght of the data to send before reading, the message that is to be send should be sent now, and the last byte should be the number of bytes to receive from the device
##### Example
[0x03] - Length
[0x02] - Command
[X] - Device address
[X] - Length of data to send
[X] - Actual data
[n] - Request two bytes from the device
##### Response
[0x02+n] - Length
[0x02] - Response to command 2
[X] - Arbitrary status value which matches the value of Arduino's endTransmission function
n*[X] - Data received from the device
#### 3 - Quit
This commands quits the control interface.
It will also reset the baud rate to 115200
##### Example
[0x01] - Length
[0x03] - Command
##### Response
[0x01] - Length
[0x03] - Response to command 3
#### 4 - Protocol version
Returns the current protocol version
##### Example
[0x01] - Length
[0x04] - Command
##### Response
[0x02] - Length
[0x04] - Response to command 4
[0x03] - Current protocol version
#### 5 - Reboot
This command will reset the ESP32
##### Example
[0x01] - Length
[0x05] - Command
##### Response
[0x01] - Length
[0x05] - Response to command 5
#### 6 - Change baud rate
This will change the baud rate. Response of this command is still in the prev baud rate.
##### Example
Set baud rate to 921600
[0x05] - Length
[0x06] - Command
[0x00] - MSB byte of baud rate
[0x0E]
[0x10]
[0x00] - LSB byte of baud rate
##### Response
[0x01] - Length
[0x06] - Response to command 6
#### 7 - Write to EEPROM
This command will write to the NVS of the ESP32
This command is only available on versions 2+
##### Example
Store 0xff at address 0x10
[0x04] - Length
[0x07] - Command
[0x00] - MSB byte of address
[0x10] - LSB byte of address
[0xff]
Store 0xffaa at address 0x5555
[0x04] - Length
[0x07] - Command
[0x55] - MSB byte of address
[0x55] - LSB byte of address
[0xff]
[0xaa]
##### Response
[0x01] - Length
[0x07] - Response to command 7
#### 8 - Read from EEPROM
This command will read from the NVS of the ESP32
This command is only available on versions 2+
##### Structure
[0x04] - Length
[0x08] - Command
[X] - MSB byte of address
[X] - LSB byte of address
[n] - Length to read
##### Response
[0x01 + n] - Length
[0x08] - Response to command 8
n*[X] - Data read from EEPROM
#### 253 - Get user data for control mode
This command is only available on versions 2+
This commands gets the length and address of the user data for control mode
##### Structure
[0x01] - Length
[0xFD] - Command
##### Response
[0x05] - Length
[0xFD] - Response to command 253
[X] - MSB byte of address
[X] - LSB byte of address
[X] - MSB byte of size
[X] - LSB byte of size
#### 254 - Get persistence address
This command is only available on versions 2+
If an non zero was written to the persistance address in the EEPROM, after every reboot the radio would boot up into the control mode without the full init sequence (Holding mode while booting will override this)
##### Structure
[0x01] - Length
[0xFE] - Command
##### Response
[0x03] - Length
[0xFE] - Response to command 254
[X] - MSB byte of persistence address
[X] - LSB byte of persistence address
#### 255 - Ping / Wake
This command is only available on versions 2+
##### Structure
[0x01] - Length
[0xFF] - Command
##### Response
[0x01] - Length
[0xFF] - Response to command 255
### CRC
First bit of the length from version 3 control whether there is an crc byte at the end of the command, it is not included in the length. If the request was sent with CRC, response also will be too. In case of a CRC mismatch the radio will send back [0x02 0xFF 0x01]. CRC is calculated with the lenght included
## Changes
Length is now 16 bits. MSB is now the last bit of the 16 bits.
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@@ -0,0 +1 @@
Sorry for the bad quality, but no one asked for photos, so you still should congratulate me for them
+4 -3
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@@ -2,10 +2,11 @@
#include "globals.h"
#include "rtc.hpp"
static const char ntpServerName[] = "0.pool.ntp.org";
static const int localPort = 8944;
const int NTP_PACKET_SIZE = 48;
static constexpr char ntpServerName[] = "0.pool.ntp.org";
static constexpr int localPort = 8944;
constexpr int NTP_PACKET_SIZE = 48;
void sendNTPpacket(IPAddress &address);
void NTPupdate();
time_t getNtpTime();
void ntpPoll();
+32 -32
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@@ -100,14 +100,14 @@ static const uint16_t oda_app_ids[] {
static const char* const ECCtext[] {
"Bundesrepublik Deutschland", // 0
"Ελληνική Δημοκρατία / (Hellenic Republic)", // 1
"Ελληνική Δημοκρατία [Hellenic Republic]", // 1
"Kingdom of Morroco", // 2
"Republica Moldova", // 3
"People's Democratic Republic of Algeria", // 4
"Κυπριακή Δημοκρατία / (Republic of Cyprus)", // 5
"Κυπριακή Δημοκρατία [Republic of Cyprus]", // 5
"Česká republika", // 6
"Ireland", // 7
"Eesti Vabariik / (Republic of Estonia)", // 8
"Eesti Vabariik [Republic of Estonia]", // 8
"Principat d'Andorra", // 9
"Repubblica di San Marino", // 10
"Rzeczpospolita Polska", // 11
@@ -118,17 +118,17 @@ static const char* const ECCtext[] {
"The former Yugoslav Republic of Macedonia", // 16
"Repubblica Italiana", // 17
"Hashemite Kingdom of Jordan", // 18
"Slovenská republika", // 19
"Koninkrijk België / Royaume de Belgique", // 20
"Suomen tasavalta / (Republic of Finland)", // 21
"Slovenská republika [Republic of Slovakia]", // 19
"Koninkrijk België / Royaume de Belgique [Kingdom of Belgium]", // 20
"Suomen tasavalta [Republic of Finland]", // 21
"Syrian Arab Republic", // 22
"Republic of Serbia", // 23
"Україна / (Ukraine)", // 24
"Российская Федерация / (Russian Federation)", // 25
"Groussherzogtum Lëtzebuerg / (Grand Duchy of Luxembourg)", // 26
"Републике Србије [Republic of Serbia]", // 23
"Україна [Ukraine]", // 24
"Российская Федерация [Russian Federation]", // 25
"Groussherzogtum Lëtzebuerg [Grand Duchy of Luxembourg]", // 26
"Republic of Tunisia", // 27
"State of Palestine", // 28
"Република България / (Republic of Bulgaria)", // 29
"Република България [Republic of Bulgaria]", // 29
"Republic of Portugal (Madeira)", // 30
"Koninkrijk der Nederlanden", // 31
"Republic of Portugal", // 32
@@ -146,13 +146,13 @@ static const char* const ECCtext[] {
"Principality of Monaco", // 44
"Republic of Malta", // 45
"United Kingdom of Great Britain and Northern Ireland", // 46
"Lietuvos Respublika / (Republic of Lithuania)", // 47
"Republika Hrvatska / (Republic of Croatia)", // 48
"Lietuvos Respublika [Republic of Lithuania]", // 47
"Republika Hrvatska [Republic of Croatia]", // 48
"Libya", // 49
"Kingdom of Spain (Canary Islands)", // 50
"România", // 51
"Reino de España / (Kingdom of Spain)", // 52
"Konungariket Sverige / (Kingdom of Sweden)", // 53
"Reino de España [Kingdom of Spain]", // 52
"Konungariket Sverige [Kingdom of Sweden]", // 53
"Arab Republic of Egypt", // 54
"République de France", // 55
"Kongeriket Norge", // 56
@@ -239,7 +239,7 @@ static const char* const ECCtext[] {
"República Federativa do Brasil", // 137
"Canada", // 138
"United Kingdom of Great Britain and Northern Ireland (Cayman Islands)", // 139
"Republic of Chile", // 140
"República de Chile", // 140
"Republic of Colombia", // 141
"Republic of Costa Rica", // 142
"Republic of Cuba", // 143
@@ -250,20 +250,20 @@ static const char* const ECCtext[] {
"United Kingdom of Great Britain and Northern Ireland (Falkland Islands)", // 148
"Kingdom of Denmark (Greenland, NOT USA)", // 149
"Grenada", // 150
"Republic of France (Guadeloupe)", // 151
"République française (Guadeloupe)", // 151
"Republic of Guatemala", // 152
"Republic of Guyana", // 153
"Republic of Haiti", // 154
"Republic of Honduras", // 155
"Jamaica", // 156
"Republic of France (Martinique)", // 157
"République française (Martinique)", // 157
"Estados Unidos Mexicanos", // 158
"United Kingdom of Great Britain and Northern Ireland (Montserrat)", // 159
"Netherlands Antilles (does not exist)", // 160
"Netherlands Antilles", // 160
"Republic of Nicaragua", // 161
"Republic of Panama", // 162
"Republic of Paraguay", // 163
"Republic of Peru", // 164
"República del Paraguay", // 163
"República del Perú", // 164
"United States of America (Puerto Rico)", // 165
"Saint Kitts and Nevis", // 166
"Saint Lucia", // 167
@@ -289,18 +289,18 @@ static const char* const ECCtext[] {
"Kingdom of Bhutan", // 187
"Negara Brunei Darussalam", // 188
"Kingdom of Cambodia", // 189
"People's Republic of China", // 190
"中华人民共和国 [PRC]", // 190
"Republic of Fiji", // 191
"People's Republic of China (Hong Kong)", // 192
"中华人民共和国(香港 [PRC, HK]", // 192
"Republic of India", // 193
"Republic of Indonesia", // 194
"Islamic Republic of Iran", // 195
"Japan", // 196
"Republic of Kiribati", // 197
"Democratic People's Republic of Korea (North Korea)", // 198
"Republic of Korea (South Korea)", // 199
"Democratic People's Republic of Korea [North Korea]", // 198
"Republic of Korea [South Korea]", // 199
"Lao People's Democratic Republic", // 200
"People's Republic of China (Macao)", // 201
"中华人民共和国(澳门) [PRC, M]", // 201
"Malaysia", // 202
"Republic of Maldives", // 203
"United States of America (Marshall Islands)", // 204
@@ -316,7 +316,7 @@ static const char* const ECCtext[] {
"Republic of Singapore", // 214
"Solomon Islands", // 215
"Democratic Socialist Republic of Sri Lanka", // 216
"Republic of China (Taiwan)", // 217
"Republic of China [Taiwan]", // 217
"Kingdom of Thailand", // 218
"Kingdom of Tonga", // 219
"Republic of Vanuatu", // 220
@@ -324,7 +324,7 @@ static const char* const ECCtext[] {
"Commonwealth of the Bahamas", // 222
"United Kingdom of Great Britain and Northern Ireland (Bermuda) / Federative Republic of Brazil", // 223
"Federative Republic of Brazil / Republic of Ecuador", // 224
"Netherlands Antilles (does not exist) / Federative Republic of Brazil", // 225
"Netherlands Antilles / Federative Republic of Brazil", // 225
"United States of America", // 226
"People's Republic of Bangladesh", // 227
"Rzeczpospolita Zachodniej Polski" // 228 - doesn't exist, YET, we don't want a fucking pimp for president here
@@ -462,7 +462,7 @@ typedef struct _rds_ {
bool rdsDerror;
Detector<bool, 1> hasArtificialhead{false};
Detector<bool, 1> hasCompressed{false};
bool hasDynamicPTY;
Detector<bool, 1> hasDynamicPTY{false};
Detector<bool, 1> hasStereo{false};
bool hasRDS;
bool hasECC;
@@ -534,9 +534,9 @@ class TEF6686 {
void SetFreq(uint16_t frequency);
void SetFreqAM(uint16_t frequency);
void getProcessing(uint16_t &highcut, uint16_t &stereo, uint16_t &sthiblend, uint8_t &stband_1, uint8_t &stband_2, uint8_t &stband_3, uint8_t &stband_4);
void getStatus(int16_t *level, uint16_t *USN, uint16_t *WAM, int16_t *offset, uint16_t *bandwidth, uint16_t *modulation, int8_t *snr);
void getStatusAM(int16_t *level, uint16_t *noise, uint16_t *cochannel, int16_t *offset, uint16_t *bandwidth, uint16_t *modulation, int8_t *snr);
void getIdentification(uint16_t *device, uint16_t *hw_version, uint16_t *sw_version);
void getStatus(int16_t *level, uint16_t *USN, uint16_t *WAM, int16_t *offset, uint16_t *bandwidth, uint16_t *audiolevel);
void getStatusAM(int16_t *level, uint16_t *noise, uint16_t *cochannel, int16_t *offset, uint16_t *bandwidth, uint16_t *audiolevel);
uint16_t getIdentification(uint16_t *hw_version, uint16_t *sw_version);
void setSoftmuteFM(uint8_t mode);
void setSoftmuteAM(uint8_t mode);
void setMono(bool mono);
+3 -1
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@@ -24,6 +24,7 @@ typedef enum {
Cmd_Set_NoiseBlanker_Audio = 24,
Cmd_Set_Deemphasis = 31,
Cmd_Set_StereoImprovement = 32,
Cmd_Set_LevelStep = 38,
Cmd_Set_LevelOffset = 39,
Cmd_Set_Softmute_Max = 45,
Cmd_Set_Highcut_Level = 52,
@@ -31,6 +32,7 @@ typedef enum {
Cmd_Set_Highcut_Mph = 54,
Cmd_Set_Highcut_Max = 55,
Cmd_Set_LowCut_Max = 57,
Cmd_Set_LowCut_Min = 58,
Cmd_Set_Stereo_Time = 60,
Cmd_Set_Stereo_Level = 62,
Cmd_Set_Stereo_Noise = 63,
@@ -78,7 +80,7 @@ void devTEF_Set_Cmd(TEF_MODULE module, uint8_t cmd, uint16_t len, ...);
bool devTEF_Get_Cmd(TEF_MODULE module, uint8_t cmd, uint8_t *receive, uint16_t len);
void devTEF_Radio_Set_Wavegen(bool mode, int16_t amplitude, uint16_t freq);
void devTEF_Radio_Get_Quality_Status(uint16_t *status, int16_t *level, uint16_t *usn, uint16_t *wam, int16_t *offset, uint16_t *bandwidth, uint16_t *mod, int8_t *snr);
void devTEF_Radio_Get_Quality_Data(uint16_t *status, int16_t *level, uint16_t *usn, uint16_t *wam, int16_t *offset, uint16_t *bandwidth, uint16_t *audiolevel);
uint8_t devTEF_APPL_Get_Operation_Status();
void devTEF_Radio_Get_RDS_Status(uint16_t *status, uint16_t *A_block, uint16_t *B_block, uint16_t *C_block, uint16_t *D_block, uint16_t *dec_error);
void devTEF_Radio_Get_RDS_Data(uint16_t *status, uint16_t *A_block, uint16_t *B_block, uint16_t *C_block, uint16_t *D_block, uint16_t *dec_error);
+4 -19
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@@ -3,36 +3,21 @@
#include "globals.h"
#include "nonvolatile.h"
#include <Hash.h>
#include "core.h"
#include "gui.h"
void Communication();
void XDRGTKRoutine();
void passwordcrypt();
void tryWiFi();
void wifiPoll();
void total_pc_control();
extern void DataPrint(String string);
extern void ShowFreq(int mode);
extern void SelectBand();
extern void doBW();
extern void BuildDisplay();
extern void BuildAdvancedRDS();
extern void ModeButtonPress();
extern void Seek(bool mode);
extern void doStereoToggle();
extern void MuteScreen(bool setting);
extern void updateiMS();
extern void updateEQ();
extern void tftPrint(int8_t offset, const String & text, int16_t x, int16_t y, int color, int smoothcolor, uint8_t fontsize);
extern void showAutoSquelch(bool mode);
extern void ShowStepSize();
extern void startFMDXScan();
extern void cancelDXScan();
extern void printLogbookCSV();
extern void NTPupdate();
extern void handleRoot();
extern void handleDownloadCSV();
extern void handleLogo();
extern void Infoboxprint(const char* input);
extern void TuneUp();
extern void TuneDown();
extern void ShowTuneMode();
extern const char* textUI(uint16_t number);
+69 -143
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@@ -2,7 +2,7 @@
#include <Arduino.h>
#define VERSION "v2.20.5e"
#define VERSION "v2.20.7b"
#define ROTARY_PIN_A 34
#define ROTARY_PIN_B 36
@@ -22,24 +22,55 @@
#define RX8010SJ_ADDRESS 0x32 // Address of the RTC chip in the DP666 receivers
#define REVERSE false
#define ALEFT -1
#define ACENTER 0
#define ARIGHT 1
#define MAX(x, y) (x) < (y) ? (y) : (x)
#define MIN(X, Y) {\
typeof (X) x_ = (X);\
typeof (Y) y_ = (Y);\
(x_ < y_) ? x_ : y_; }
#define TIMER_OFFSET_TIMER 250
#define TIMER_BW_TIMER 300
#define TIMER_SNR_TIMER 30
#define TIMER_BAT_TIMER 750
#define BAT_LEVEL_STAGE 8
// Signal quality thresholds for scanning
#define SCAN_SIGNAL_THRESHOLD_USN_MULTIPLIER 30
#define SCAN_SIGNAL_THRESHOLD_WAM 230
#define SCAN_SIGNAL_THRESHOLD_OSTATUS 80
#define SCAN_SIGNAL_THRESHOLD_OSTATUS_WIDE 100
// Timing constants (milliseconds)
#define DELAY_TUNE_MS 50
#define DELAY_UI_UPDATE_MS 200
#define DELAY_BUTTON_DEBOUNCE_MS 50
#define DELAY_BUTTON_DEBOUNCE_EXTRA_MS 75
#define DELAY_KEYPAD_TIMEOUT_MS 2000
#define DELAY_RDS_READ_MS 60
#define DELAY_TOUCH_REPEAT_MS 500
#define TOT_MULTIPLIER_MS 60000
#define NTP_UPDATE_INTERVAL_MS 1800000
#define UDP_LOG_INTERVAL_MS 500
#define SCAN_HOLD_DEFAULT_MS 500
// UI layout coordinates
#define STEREO_ICON_X 32
#define STEREO_ICON_Y 5
#define WIFI_ICON_X 282
#define WIFI_ICON_Y 3
#define WIFI_ICON_WIDTH 30
#define WIFI_ICON_HEIGHT 25
#define SPEAKER_ICON_X 249
#define SPEAKER_ICON_Y 4
#define SPEAKER_ICON_WIDTH 28
#define SPEAKER_ICON_HEIGHT 24
// Touch thresholds
#define TOUCH_RAW_Z_THRESHOLD 235
// Battery detection
#define BATTERY_DETECT_THRESHOLD 200 // About 0.161V
// Squelch values
#define SQUELCH_MAX_VALUE 920
#define BATTERY_LOW_VALUE 3.2
#define BATTERY_FULL_VALUE 4.12
@@ -224,134 +255,6 @@
#define ITEM9 190
#define ITEM10 210
// EEPROM index defines
#define EE_PRESETS_CNT 99 // When set > 99 change the complete EEPROM adressing!
#define EE_CHECKBYTE_VALUE 20 // 0 ~ 255,add new entry, change for new value
#define EE_PRESETS_FREQUENCY 0 // Default value when memory channel should be skipped!
#define EE_TOTAL_CNT 2287 // Total occupied eeprom bytes
#define EE_PRESETS_BAND_START 0 // 99 * 1 byte
#define EE_PRESET_BW_START 99 // 99 * 1 byte
#define EE_PRESET_MS_START 198 // 99 * 1 byte
#define EE_PRESETS_FREQUENCY_START 297 // 99 * 4 bytes
#define EE_PRESETS_RDSPI_START 693 // 99 * 5 bytes
#define EE_PRESETS_RDSPS_START 1188 // 99 * 9 bytes
#define EE_UINT16_FREQUENCY_FM 2079
#define EE_BYTE_VOLSET 2083
#define EE_BYTE_STEREO 2084
#define EE_BYTE_BANDFM 2085
#define EE_BYTE_BANDAM 2086
#define EE_UINT16_CONVERTERSET 2087
#define EE_UINT16_FMLOWEDGESET 2091
#define EE_UINT16_FMHIGHEDGESET 2095
#define EE_BYTE_CONTRASTSET 2099
#define EE_BYTE_STEREOLEVEL 2100
#define EE_BYTE_HIGHCUTLEVEL 2101
#define EE_BYTE_HIGHCUTOFFSET 2102
#define EE_BYTE_LEVELOFFSET 2103
#define EE_BYTE_RTBUFFER 2104
#define EE_BYTE_SORTAF 2105
#define EE_BYTE_STATIONLISTID 2106
#define EE_BYTE_EDGEBEEP 2107
#define EE_BYTE_SOFTMUTEAM 2108
#define EE_BYTE_SOFTMUTEFM 2109
#define EE_UINT16_FREQUENCY_AM 2110
#define EE_BYTE_LANGUAGE 2114
#define EE_BYTE_SHOWRDSERRORS 2115
#define EE_BYTE_TEF 2116
#define EE_BYTE_DISPLAYFLIP 2117
#define EE_BYTE_ROTARYMODE 2118
#define EE_BYTE_STEPSIZE 2119
#define EE_BYTE_TUNEMODE 2120
// empty byte
#define EE_BYTE_CHECKBYTE 2122
#define EE_BYTE_IMSSET 2123
#define EE_BYTE_EQSET 2124
#define EE_BYTE_BAND 2125
#define EE_BYTE_LOWLEVELSET 2126
#define EE_BYTE_BWSET_FM 2127
#define EE_BYTE_BWSET_AM 2128
#define EE_BYTE_BANDAUTOSW 2129
#define EE_BYTE_MEMORYPOS 2130
#define EE_BYTE_REGION 2131
#define EE_BYTE_RDS_UNDERSCORE 2132
#define EE_BYTE_USBMODE 2133
#define EE_BYTE_WIFI 2134
#define EE_BYTE_SUBNETCLIENT 2135
#define EE_BYTE_SHOWSWMIBAND 2136
#define EE_BYTE_RDS_FILTER 2137
#define EE_BYTE_RDS_PIERRORS 2138
#define EE_BYTE_USESQUELCH 2139
#define EE_BYTE_SHOWMODULATION 2140
#define EE_BYTE_AM_NB 2141
#define EE_BYTE_FM_NB 2142
#define EE_BYTE_AUDIOMODE 2143
#define EE_BYTE_TOUCH_ROTATING 2144
#define EE_BYTE_HARDWARE_MODEL 2145
#define EE_BYTE_POWEROPTIONS 2146
#define EE_BYTE_CURRENTTHEME 2147
#define EE_BYTE_FMDEFAULTSTEPSIZE 2148
#define EE_BYTE_SCREENSAVERSET 2149
#define EE_BYTE_UNIT 2150
#define EE_BYTE_AF 2151
#define EE_BYTE_BATTERY_OPTIONS 2152
#define EE_BYTE_AM_CO_DECT 2153
#define EE_BYTE_AM_CO_DECT_COUNT 2154
#define EE_BYTE_AM_RF_GAIN 2155
#define EE_BYTE_FM_DEEMPHASIS 2156
#define EE_UINT16_FREQUENCY_LW 2157
#define EE_UINT16_FREQUENCY_MW 2161
#define EE_UINT16_FREQUENCY_SW 2165
#define EE_UINT16_LOWEDGEOIRTSET 2169
#define EE_UINT16_HIGHEDGEOIRTSET 2173
#define EE_INT16_AMLEVELOFFSET 2177
#define EE_UINT16_FREQUENCY_OIRT 2181
#define EE_STRING_XDRGTK_KEY 2185 // 11 byte
#define EE_BYTE_FASTPS 2196
#define EE_BYTE_TOT 2197
#define EE_BYTE_MWREGION 2198
#define EE_BYTE_SPISPEED 2199
#define EE_BYTE_AMSCANSENS 2200
#define EE_BYTE_FMSCANSENS 2201
#define EE_BYTE_FREQFONT 2202
// Empty space, this was not used
#define EE_BYTE_XDRGTKMUTE 2204
#define EE_BYTE_FMAGC 2205
#define EE_BYTE_AMAGC 2206
#define EE_BYTE_FMSI 2207
#define EE_BYTE_SCANSTART 2208
#define EE_BYTE_SCANSTOP 2209
#define EE_BYTE_SCANHOLD 2210
#define EE_BYTE_SCANMEM 2211
#define EE_BYTE_SCANCANCEL 2212
#define EE_BYTE_SCANMUTE 2213
#define EE_BYTE_AUTOSQUELCH 2214
#define EE_BYTE_LONGBANDPRESS 2215
#define EE_BYTE_SHOWCLOCK 2216
#define EE_BYTE_SHOWLONGPS 2217
#define EE_UINT16_MEMSTARTFREQ 2218
#define EE_UINT16_MEMSTOPFREQ 2222
#define EE_BYTE_MEMSTARTPOS 2226
#define EE_BYTE_MEMSTOPPOS 2227
#define EE_BYTE_MEMPIONLY 2228
#define EE_BYTE_MEMDOUBLEPI 2229
// blank space
#define EE_BYTE_WAITONLYONSIGNAL 2253
#define EE_UINT16_CALTOUCH1 2254
#define EE_UINT16_CALTOUCH2 2258
#define EE_UINT16_CALTOUCH3 2262
#define EE_UINT16_CALTOUCH4 2266
#define EE_UINT16_CALTOUCH5 2270
#define EE_BYTE_INVERTDISPLAY 2274
#define EE_BYTE_NTPOFFSET 2275
#define EE_BYTE_AUTOLOG 2276
#define EE_BYTE_AUTODST 2277
#define EE_BYTE_CLOCKAMPM 2278
#define EE_UINT16_LOGCOUNTER 2279
#define EE_UINT16_PICTLOCK 2283
// End of EEPROM index defines
// Memory channel database
typedef struct {
byte bw;
@@ -414,11 +317,6 @@ enum RADIO_FM_DEEMPHASIS {
DEEMPHASIS_COUNT
};
enum SPI_SPEED_ENUM {
SPI_SPEED_DEFAULT = 0, SPI_SPEED_10M, SPI_SPEED_20M, SPI_SPEED_30M, SPI_SPEED_40M, SPI_SPEED_50M, SPI_SPEED_60M, SPI_SPEED_70M,
SPI_SPEED_COUNT
};
enum RADIO_MEM_POS_STATUS {
MEM_DARK, MEM_NORMAL, MEM_EXIST
};
@@ -673,6 +571,34 @@ static const uint8_t WiFi4[] PROGMEM = {
0x00, 0x00, 0x00, 0x00
};
static const uint8_t WiFiX[] PROGMEM = {
0x00, 0x00, 0x00, 0x00,
0x18, 0x00, 0x00, 0x60,
0x0C, 0x00, 0x00, 0xC0,
0x06, 0x00, 0x01, 0x80,
0x03, 0x00, 0x03, 0x00,
0x01, 0x80, 0x06, 0x00,
0x00, 0xC0, 0x0C, 0x00,
0x00, 0x60, 0x18, 0x00,
0x00, 0x30, 0x30, 0x00,
0x00, 0x18, 0x60, 0x00,
0x00, 0x0C, 0xC0, 0x00,
0x00, 0x07, 0x80, 0x00,
0x00, 0x07, 0x80, 0x00,
0x00, 0x07, 0x80, 0x00,
0x00, 0x0C, 0xC0, 0x00,
0x00, 0x18, 0x60, 0x00,
0x00, 0x30, 0x30, 0x00,
0x00, 0x60, 0x18, 0x00,
0x00, 0xC0, 0x0C, 0x00,
0x01, 0x80, 0x06, 0x00,
0x03, 0x00, 0x03, 0x00,
0x06, 0x00, 0x01, 0x80,
0x0C, 0x00, 0x00, 0xC0,
0x18, 0x00, 0x00, 0x60,
0x00, 0x00, 0x00, 0x00
};
static const uint16_t radiologo[] PROGMEM = {
0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000,
0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000,
+23
View File
@@ -0,0 +1,23 @@
#pragma once
#include <stdint.h>
#include <Arduino.h>
const char* textUI(uint16_t number);
uint8_t doAutoMemory(uint16_t startfreq, uint16_t stopfreq, uint8_t startmem, uint8_t stopmem, bool rdsonly, uint8_t doublepi);
void setAutoSpeedSPI();
void DoMemoryPosTune();
void startFMDXScan();
void endMenu();
void TuneUp();
void ShowFreq(int mode);
void ShowMemoryPos();
void TuneDown();
void ShowTuneMode();
void SelectBand();
void doBW();
void ModeButtonPress();
void Seek(bool mode);
void MuteScreen(bool setting);
void cancelDXScan();
void doStereoToggle();
void DataPrint(String string);
+11 -9
View File
@@ -5,15 +5,15 @@
#include "TEF6686.h"
#include "constants.h"
#include "change_detector.h"
#include "nonvolatile.h"
#include "language.h"
#include <WiFi.h>
#include <WiFiUdp.h>
#include <WiFiClient.h>
#include <WebServer.h>
#include <WiFiConnect.h>
#include <WiFiConnectParam.h>
#include "scrolling_text.h"
#include "rtc.hpp"
#include "WiFiConnect.h"
extern bool RDSstatus;
extern bool RDSstatusold;
@@ -26,7 +26,7 @@ extern bool autosquelch, batterydetect, beepresetstart;
extern bool beepresetstop, BWreset, bwtouchtune;
extern bool BWtune, change, clockampm;
extern bool direction, dropout;
extern bool dynamicPTYold, edgebeep, externaltune;
extern bool edgebeep, externaltune;
extern bool findMemoryAF;
extern bool firstTouchHandled;
extern bool flashing;
@@ -138,7 +138,7 @@ extern byte scanhold;
extern byte scanmodeold;
extern byte screensaverOptions[5];
extern byte screensaverset;
extern byte showmodulation;
extern byte showaudio;
extern byte showrdserrors;
extern byte showSWMIBand;
extern byte submenu;
@@ -229,9 +229,7 @@ extern int8_t MPold;
extern int8_t USold;
extern int8_t LevelOffset;
extern int8_t LowLevelSet;
extern int8_t NTPoffset;
extern int8_t CN;
extern int8_t CNold;
extern int8_t Timezone;
extern int8_t VolSet;
extern float batteryVold;
extern IPAddress remoteip;
@@ -261,6 +259,7 @@ extern String XDRGTK_key;
extern Detector<String, 1> XDRGTKRDS;
extern uint16_t BW;
extern uint16_t MStatus;
extern bool modLevelForceRedraw;
extern uint16_t SWMIBandPos;
extern uint16_t SWMIBandPosold;
extern uint16_t TouchCalData[5];
@@ -317,8 +316,8 @@ extern unsigned long flashingtimer;
extern unsigned long keypadtimer;
extern unsigned long lastTouchTime;
extern unsigned long lowsignaltimer;
extern unsigned long ModulationpreviousMillis;
extern unsigned long ModulationpeakPreviousMillis;
extern unsigned long AudiopreviousMillis;
extern unsigned long AudiopeakPreviousMillis;
extern unsigned long NTPtimer;
extern unsigned long peakholdmillis;
extern unsigned long processed_rdsblocksold[33];
@@ -336,6 +335,9 @@ extern bool rds_settings_changed;
extern const size_t language_totalnumber;
extern const size_t language_entrynumber;
extern volatile bool i2c_pc_control;
extern volatile bool i2c_pc_control_init;
extern mem presets[EE_PRESETS_CNT];
extern TEF6686 radio;
+9
View File
@@ -0,0 +1,9 @@
#pragma once
#include "globals.h"
void tftPrint(int8_t offset, const String & text, int16_t x, int16_t y, int color, int smoothcolor, uint8_t fontsize);
void tftPrint16(int8_t offset, const String & text, int16_t x, int16_t y, int color, int smoothcolor, bool force_font = true, bool font = false);
void tftReplace(int8_t offset, const String & textold, const String & text, int16_t x, int16_t y, int color, int smoothcolor, int background, uint8_t fontsize);
void tftReplace16(int8_t offset, const String & textold, const String & text, int16_t x, int16_t y, int color, int smoothcolor, int background, bool force_font = true, bool font = false);
void UpdateFonts();
+9 -19
View File
@@ -3,12 +3,13 @@
#include "globals.h"
#include "utils.h"
#include "menugraphics.h"
#include "core.h"
static const char* const unitString[] = {"dBμV", "dBf", "dBm"};
static const char* const FreqFont[] = {"Classic", "Roubenstil", "Motoya", "Aura2", "Comic", "Modern"};
static const char* const Theme[] = {"Essence", "Cyan", "Crimson", "Monochrome", "Volcano", "Dendro", "Sakura", "Whiteout", "Tangerine", "Ocean", "Indigo", "Queer", "GoldBrite", "Bubblegum"};
static const char* BWButtonLabelsFM[] = {"56 kHz", "64 kHz", "72 kHz", "84 kHz", "97 kHz", "114 kHz", "133 kHz", "151 kHz", "168 kHz", "184 kHz", "200 kHz", "217 kHz", "236 kHz", "254 kHz", "287 kHz", "311 kHz", "Auto", "iMS", "EQ"};
static const char* BWButtonLabelsAM[] = {"3 kHz", "4 kHz", "6 kHz", "8 kHz"};
extern const char* BWButtonLabelsFM[];
extern const char* BWButtonLabelsAM[];
void BuildAFScreen();
void BuildRDSStatScreen();
@@ -24,28 +25,17 @@ void drawButton(const char* text, byte button_number, bool active, bool selected
String shortLine(String text);
void showMenuOpenTouchButtons();
void showBWSelector();
void ShowRDSLogo(bool RDSstatus);
void showAutoSquelch(bool mode);
void updateEQ();
void updateiMS();
void updateBW();
void ShowStepSize();
extern void ShowFreq(int mode);
extern void ShowBandSelectionFM(bool notglanceview, bool normaldisplay);
extern void ShowBandSelectionAM(bool notglanceview, bool normaldisplay);
extern void ScreensaverTimerSet(byte value);
extern void ShowMemoryPos();
extern void ShowTuneMode();
extern void updateBW();
extern void ShowStepSize();
extern void updateiMS();
extern void updateEQ();
extern void doTheme();
extern void tryWiFi();
extern void TuneUp();
extern void endMenu();
extern void startFMDXScan();
extern void DoMemoryPosTune();
extern void UpdateFonts();
extern void tftPrint(int8_t offset, const String & text, int16_t x, int16_t y, int color, int smoothcolor, uint8_t fontsize);
extern void setAutoSpeedSPI();
extern void showAutoSquelch(bool mode);
extern uint8_t doAutoMemory(uint16_t startfreq, uint16_t stopfreq, uint8_t startmem, uint8_t stopmem, bool rdsonly, uint8_t doublepi);
extern void ClearMemoryRange(uint8_t start, uint8_t stop);
extern bool handleCreateNewLogbook();
extern const char* textUI(uint16_t number);
+2570 -2152
View File
File diff suppressed because it is too large Load Diff
+1 -2
View File
@@ -6,6 +6,7 @@ using fs::FS;
#include <SPIFFS.h>
#include "globals.h"
#include "rtc.hpp"
#include "core.h"
void handleRoot();
void handleDownloadCSV();
@@ -17,5 +18,3 @@ void handleLogo();
void printLogbookCSV();
void sendUDPlog();
IPAddress makeBroadcastAddress(IPAddress ip);
extern const char* textUI(uint16_t number);
+35
View File
@@ -0,0 +1,35 @@
#pragma once
#include "system_console.h"
#include "globals.h"
extern Console console;
extern RTC_DATA_ATTR bool gpio_chip;
extern RTC_DATA_ATTR bool tef_found;
template<typename... Args>
void panic(Args... args) {
radio.power(true);
tft.fillScreen(TFT_RED);
console.reset();
(console.print(args), ...);
while (true);
}
void Round30K(unsigned int freq);
void Round50K(unsigned int freq);
void Round100K(unsigned int freq);
void Round200K(unsigned int freq);
void WakeToSleep(bool yes);
void BANDBUTTONPress();
void BWButtonPress();
void doBandToggle();
int GetNum();
void NumpadProcess(int num);
bool isSignalQualityGood(int usn, int wam, int ostatus, int threshold_multiplier = SCAN_SIGNAL_THRESHOLD_USN_MULTIPLIER, int ostatus_threshold = SCAN_SIGNAL_THRESHOLD_OSTATUS);
void deepSleep();
inline bool IsStationEmpty() {
return presets[memorypos].band == BAND_FM && presets[memorypos].frequency == EE_PRESETS_FREQUENCY;
}
+131 -2
View File
@@ -1,7 +1,136 @@
#pragma once
#include <EEPROM.h>
#include "globals.h"
#include "logbook.h"
// EEPROM index defines
#define EE_PRESETS_CNT 99 // When set > 99 change the complete EEPROM adressing!
#define EE_CHECKBYTE_VALUE 20 // 0 ~ 255,add new entry, change for new value
#define EE_PRESETS_FREQUENCY 0 // Default value when memory channel should be skipped!
#define EE_TOTAL_CNT 2296 // Total occupied eeprom bytes, we can take 20K
#define EE_PRESETS_BAND_START 0 // 99 * 1 byte
#define EE_PRESET_BW_START 99 // 99 * 1 byte
#define EE_PRESET_MS_START 198 // 99 * 1 byte
#define EE_PRESETS_FREQUENCY_START 297 // 99 * 4 bytes
#define EE_PRESETS_RDSPI_START 693 // 99 * 5 bytes
#define EE_PRESETS_RDSPS_START 1188 // 99 * 9 bytes
#define EE_UINT16_FREQUENCY_FM 2079
#define EE_BYTE_VOLSET 2083
#define EE_BYTE_STEREO 2084
#define EE_BYTE_BANDFM 2085
#define EE_BYTE_BANDAM 2086
#define EE_UINT16_CONVERTERSET 2087
#define EE_UINT16_FMLOWEDGESET 2091
#define EE_UINT16_FMHIGHEDGESET 2095
#define EE_BYTE_CONTRASTSET 2099
#define EE_BYTE_STEREOLEVEL 2100
#define EE_BYTE_HIGHCUTLEVEL 2101
#define EE_BYTE_HIGHCUTOFFSET 2102
#define EE_BYTE_LEVELOFFSET 2103
#define EE_BYTE_RTBUFFER 2104
#define EE_BYTE_SORTAF 2105
#define EE_BYTE_STATIONLISTID 2106
#define EE_BYTE_EDGEBEEP 2107
#define EE_BYTE_SOFTMUTEAM 2108
#define EE_BYTE_SOFTMUTEFM 2109
#define EE_UINT16_FREQUENCY_AM 2110
#define EE_BYTE_LANGUAGE 2114
#define EE_BYTE_SHOWRDSERRORS 2115
#define EE_BYTE_TEF 2116
#define EE_BYTE_DISPLAYFLIP 2117
#define EE_BYTE_ROTARYMODE 2118
#define EE_BYTE_STEPSIZE 2119
#define EE_BYTE_TUNEMODE 2120
// empty byte
#define EE_BYTE_CHECKBYTE 2122
#define EE_BYTE_IMSSET 2123
#define EE_BYTE_EQSET 2124
#define EE_BYTE_BAND 2125
#define EE_BYTE_LOWLEVELSET 2126
#define EE_BYTE_BWSET_FM 2127
#define EE_BYTE_BWSET_AM 2128
#define EE_BYTE_BANDAUTOSW 2129
#define EE_BYTE_MEMORYPOS 2130
#define EE_BYTE_REGION 2131
#define EE_BYTE_RDS_UNDERSCORE 2132
#define EE_BYTE_USBMODE 2133
#define EE_BYTE_WIFI 2134
#define EE_BYTE_SUBNETCLIENT 2135
#define EE_BYTE_SHOWSWMIBAND 2136
#define EE_BYTE_RDS_FILTER 2137
#define EE_BYTE_RDS_PIERRORS 2138
#define EE_BYTE_USESQUELCH 2139
#define EE_BYTE_SHOWAUDIO 2140
#define EE_BYTE_AM_NB 2141
#define EE_BYTE_FM_NB 2142
#define EE_BYTE_AUDIOMODE 2143
#define EE_BYTE_TOUCH_ROTATING 2144
#define EE_BYTE_HARDWARE_MODEL 2145
#define EE_BYTE_POWEROPTIONS 2146
#define EE_BYTE_CURRENTTHEME 2147
#define EE_BYTE_FMDEFAULTSTEPSIZE 2148
#define EE_BYTE_SCREENSAVERSET 2149
#define EE_BYTE_UNIT 2150
#define EE_BYTE_AF 2151
#define EE_BYTE_BATTERY_OPTIONS 2152
#define EE_BYTE_AM_CO_DECT 2153
#define EE_BYTE_AM_CO_DECT_COUNT 2154
#define EE_BYTE_AM_RF_GAIN 2155
#define EE_BYTE_FM_DEEMPHASIS 2156
#define EE_UINT16_FREQUENCY_LW 2157
#define EE_UINT16_FREQUENCY_MW 2161
#define EE_UINT16_FREQUENCY_SW 2165
#define EE_UINT16_LOWEDGEOIRTSET 2169
#define EE_UINT16_HIGHEDGEOIRTSET 2173
#define EE_INT16_AMLEVELOFFSET 2177
#define EE_UINT16_FREQUENCY_OIRT 2181
#define EE_STRING_XDRGTK_KEY 2185 // 11 byte
#define EE_BYTE_FASTPS 2196
#define EE_BYTE_TOT 2197
#define EE_BYTE_MWREGION 2198
#define EE_BYTE_SPISPEED 2199
#define EE_BYTE_AMSCANSENS 2200
#define EE_BYTE_FMSCANSENS 2201
#define EE_BYTE_FREQFONT 2202
// Empty space, this was not used
#define EE_BYTE_XDRGTKMUTE 2204
#define EE_BYTE_FMAGC 2205
#define EE_BYTE_AMAGC 2206
#define EE_BYTE_FMSI 2207
#define EE_BYTE_SCANSTART 2208
#define EE_BYTE_SCANSTOP 2209
#define EE_BYTE_SCANHOLD 2210
#define EE_BYTE_SCANMEM 2211
#define EE_BYTE_SCANCANCEL 2212
#define EE_BYTE_SCANMUTE 2213
#define EE_BYTE_AUTOSQUELCH 2214
#define EE_BYTE_LONGBANDPRESS 2215
#define EE_BYTE_SHOWCLOCK 2216
#define EE_BYTE_SHOWLONGPS 2217
#define EE_UINT16_MEMSTARTFREQ 2218
#define EE_UINT16_MEMSTOPFREQ 2222
#define EE_BYTE_MEMSTARTPOS 2226
#define EE_BYTE_MEMSTOPPOS 2227
#define EE_BYTE_MEMPIONLY 2228
#define EE_BYTE_MEMDOUBLEPI 2229
// blank space
#define EE_BYTE_WAITONLYONSIGNAL 2253
#define EE_UINT16_CALTOUCH1 2254
#define EE_UINT16_CALTOUCH2 2258
#define EE_UINT16_CALTOUCH3 2262
#define EE_UINT16_CALTOUCH4 2266
#define EE_UINT16_CALTOUCH5 2270
#define EE_BYTE_INVERTDISPLAY 2274
#define EE_BYTE_TIMEZONE 2275
#define EE_BYTE_AUTOLOG 2276
#define EE_BYTE_AUTODST 2277
#define EE_BYTE_CLOCKAMPM 2278
#define EE_UINT16_LOGCOUNTER 2279
#define EE_UINT16_PICTLOCK 2283
#define EE_BYTE_CONTROLMODE 2285
// End of EEPROM index defines
#define EE_START_CONTROLMODE_DATA 2286
#define EE_LEN_CONTROLMODE_DATA 8
void StoreFrequency();
void ClearMemoryRange(uint8_t start, uint8_t stop);
+3 -8
View File
@@ -4,11 +4,13 @@
#include <TFT_eSPI.h>
#include <WiFiClient.h>
#include "TEF6686.h"
#include <WiFi.h>
#include <ESP32Time.h>
#include "globals.h"
#include "NTPupdate.h"
#include "rtc.hpp"
#include "core.h"
#include "gui.h"
#include "logbook.h"
void ShowAdvancedRDS();
void readRds();
@@ -21,10 +23,3 @@ void ShowAFEON();
void showCT();
void ShowErrors();
void ShowRDSStatistics();
extern void ShowRDSLogo(bool RDSstatus);
extern void DataPrint(String string);
extern void tftPrint(int8_t offset, const String & text, int16_t x, int16_t y, int color, int smoothcolor, uint8_t fontsize);
extern void tftReplace(int8_t offset, const String & textold, const String & text, int16_t x, int16_t y, int color, int smoothcolor, int background, uint8_t fontsize);
extern bool isDST(time_t t);
extern const char* textUI(uint16_t number);
+1 -1
View File
@@ -12,4 +12,4 @@ extern ESP32Time rtc;
extern bool rx_rtc_avail;
bool init_rtc();
void set_time(time_t time);
void set_time(time_t time, int8_t offset);
+13 -11
View File
@@ -13,7 +13,7 @@ private:
unsigned long lastTick;
unsigned long holdTick;
bool isScrolling;
std::function<void(TFT_eSprite*, bool)> postDrawCallback;
std::function<void(TFT_eSprite*)> postDrawCallback;
int usedH;
bool hold;
int xOffset;
@@ -26,17 +26,17 @@ public:
ScrollingTextDisplay(TFT_eSprite* spr, int y, int maxW, int x = 35, int inuseH = -1 ) :
sprite(spr), yPos(y), maxWidth(maxW), xPos(0), textWidth(0), lastTick(0), holdTick(0), isScrolling(false), postDrawCallback(nullptr), usedH(inuseH), hold(false), xOffset(x) {}
void setPostDrawCallback(std::function<void(TFT_eSprite*, bool)> callback) {
void setPostDrawCallback(std::function<void(TFT_eSprite*)> callback) {
postDrawCallback = callback;
}
void update(const String& text, bool status, uint16_t activeColor, uint16_t activeSmooth, uint16_t dropoutColor, uint16_t dropoutSmooth, uint16_t backgroundColor) {
void update(const String& text, bool status, uint16_t activeColor, uint16_t activeSmooth, uint16_t dropoutColor, uint16_t dropoutSmooth, uint16_t backgroundColor, uint8_t font = 255) {
textWidth = sprite->textWidth(text);
if(textWidth < maxWidth) {
xPos = 0;
isScrolling = false;
drawText(text, status, activeColor, activeSmooth, dropoutColor, dropoutSmooth, backgroundColor);
drawText(text, status, activeColor, activeSmooth, dropoutColor, dropoutSmooth, backgroundColor, font);
} else {
if(!isScrolling) holdTick = millis();
isScrolling = true;
@@ -54,7 +54,7 @@ public:
holdTick = millis();
}
drawText(text, status, activeColor, activeSmooth, dropoutColor, dropoutSmooth, backgroundColor);
drawText(text, status, activeColor, activeSmooth, dropoutColor, dropoutSmooth, backgroundColor, font);
lastTick = millis();
}
}
@@ -75,7 +75,9 @@ public:
}
private:
void drawText(const String& text, bool status, uint16_t activeColor, uint16_t activeSmooth, uint16_t dropoutColor, uint16_t dropoutSmooth, uint16_t backgroundColor) {
void drawText(const String& text, bool status, uint16_t activeColor, uint16_t activeSmooth, uint16_t dropoutColor, uint16_t dropoutSmooth, uint16_t backgroundColor, uint8_t font) {
if(font > FONT_COUNT) font = sprite->textfont;
if(usedH > 0) {
sprite->fillSprite(TFT_TRANSPARENT);
sprite->fillRect(0, 0, maxWidth, usedH, backgroundColor);
@@ -85,8 +87,8 @@ private:
if(status) sprite->setTextColor(activeColor, activeSmooth, false);
else sprite->setTextColor(dropoutColor, dropoutSmooth, false);
sprite->drawString(text, xPos, 0);
if(isScrolling) sprite->drawString(text, xPos + textWidth + SCROLL_GAP, 0);
sprite->drawString(text, xPos, 0, font);
if(isScrolling) sprite->drawString(text, xPos + textWidth + SCROLL_GAP, 0, font);
sprite->resetViewport();
} else {
@@ -95,11 +97,11 @@ private:
if(status) sprite->setTextColor(activeColor, activeSmooth, false);
else sprite->setTextColor(dropoutColor, dropoutSmooth, false);
sprite->drawString(text, xPos, 0);
if(isScrolling) sprite->drawString(text, xPos + textWidth + SCROLL_GAP, 0);
sprite->drawString(text, xPos, 0, font);
if(isScrolling) sprite->drawString(text, xPos + textWidth + SCROLL_GAP, 0, font);
}
if(postDrawCallback) postDrawCallback(sprite, false);
if(postDrawCallback) postDrawCallback(sprite);
if(yPos != 0) sprite->pushSprite(xOffset, yPos, TFT_TRANSPARENT);
}
};
+5 -3
View File
@@ -2,6 +2,8 @@
#include <Arduino.h>
#include <TFT_eSPI.h>
#define CONSOLE_FONT 2
class Console {
public:
explicit Console(TFT_eSPI* display) : tft(display), y(0) {}
@@ -9,9 +11,9 @@ public:
tft->setTextColor(TFT_WHITE, background);
tft->setTextDatum(TL_DATUM);
auto data = "[" + String(millis() / 1000.0f) + "] " + text;
tft->fillRect(0, y, tft->textWidth(data), tft->fontHeight(0), background);
tft->drawString(data, 0, y, 0);
y += tft->fontHeight(0);
tft->fillRect(0, y, tft->textWidth(data, CONSOLE_FONT), tft->fontHeight(CONSOLE_FONT), background);
tft->drawString(data, 0, y, CONSOLE_FONT);
y += tft->fontHeight(CONSOLE_FONT);
}
void reset() {
y = 0;
+3 -7
View File
@@ -1,28 +1,24 @@
// This is ancient
#pragma once
#include "globals.h"
#include "core.h"
void doTouchEvent(uint16_t x, uint16_t y);
extern void BuildDisplay();
extern void BuildBWSelector();
extern void SelectBand();
extern void BuildAdvancedRDS();
extern void doBandToggle();
extern void doTuneMode();
extern void doStereoToggle();
extern void cancelDXScan();
extern void doBW();
extern void drawButton(const char* text, byte button_number, bool active, bool selected);
extern void KeyDown();
extern void KeyUp();
extern void ButtonPress();
extern void DoMenu();
extern void ModeButtonPress();
extern void toggleiMSEQ();
extern void showBWSelector();
extern void updateiMS();
extern void updateEQ();
extern void DataPrint(String string);
extern void BuildAFScreen();
extern void ShowFreq(int mode);
+3 -22
View File
@@ -27,19 +27,8 @@
#include <sys/time.h>
#include "esp_attr.h"
#ifdef RTC_DATA_ATTR
RTC_DATA_ATTR static bool overflow;
#else
static bool overflow;
#endif
/*!
@brief set the internal RTC time
@param epoch
epoch time in seconds
@param ms
microseconds (optional)
*/
void ESP32Time::setTime(unsigned long epoch, int ms) const {
struct timeval tv;
if (epoch > 2082758399){
@@ -53,27 +42,19 @@ void ESP32Time::setTime(unsigned long epoch, int ms) const {
settimeofday(&tv, NULL);
}
/*!
@brief get the internal RTC time as a tm struct
*/
tm ESP32Time::getTimeStruct() const {
struct tm timeinfo;
time_t now;
time(&now);
localtime_r(&now, &timeinfo);
time_t tt = mktime (&timeinfo);
time_t tt = mktime(&timeinfo);
if (overflow) tt += 63071999;
struct tm * tn = localtime(&tt);
if (overflow){
tn->tm_year += 64;
}
struct tm* tn = localtime(&tt);
if (overflow) tn->tm_year += 64;
return *tn;
}
/*!
@brief get the current epoch seconds as unsigned long
*/
unsigned long ESP32Time::getEpoch() const {
struct tm timeinfo = getTimeStruct();
return mktime(&timeinfo);
-2
View File
@@ -25,10 +25,8 @@
#pragma once
#include <time.h>
class ESP32Time {
public:
void setTime(unsigned long epoch, int ms = 0) const;
tm getTimeStruct() const;
unsigned long getEpoch() const;
};
-22
View File
@@ -38,33 +38,11 @@ extern "C" {
* @param hash uint8_t[20]
*/
void sha1(uint8_t * data, uint32_t size, uint8_t hash[20]) {
SHA1_CTX ctx;
#ifdef DEBUG_SHA1
os_printf("DATA:");
for(uint16_t i = 0; i < size; i++) {
os_printf("%02X", data[i]);
}
os_printf("\n");
os_printf("DATA:");
for(uint16_t i = 0; i < size; i++) {
os_printf("%c", data[i]);
}
os_printf("\n");
#endif
SHA1Init(&ctx);
SHA1Update(&ctx, data, size);
SHA1Final(hash, &ctx);
#ifdef DEBUG_SHA1
os_printf("SHA1:");
for(uint16_t i = 0; i < 20; i++) {
os_printf("%02X", hash[i]);
}
os_printf("\n\n");
#endif
}
void sha1(char * data, uint32_t size, uint8_t hash[20]) {
+1 -6
View File
@@ -22,10 +22,7 @@
*
*/
#ifndef HASH_H_
#define HASH_H_
//#define DEBUG_SHA1
#pragma once
void sha1(uint8_t * data, uint32_t size, uint8_t hash[20]);
void sha1(char * data, uint32_t size, uint8_t hash[20]);
@@ -38,5 +35,3 @@ String sha1(char* data, uint32_t size);
String sha1(const uint8_t* data, uint32_t size);
String sha1(const char* data, uint32_t size);
String sha1(String data);
#endif /* HASH_H_ */
+10 -72
View File
@@ -23,34 +23,18 @@
34AA973C D4C4DAA4 F61EEB2B DBAD2731 6534016F
*/
/* #define LITTLE_ENDIAN * This should be #define'd already, if true. */
/* #define SHA1HANDSOFF * Copies data before messing with it. */
#define SHA1HANDSOFF
#include <stdio.h>
#include <string.h>
#include <stdint.h>
#ifndef ESP32
#include <c_types.h>
#endif
#include "sha1.h"
//#include <endian.h>
#define rol(value, bits) (((value) << (bits)) | ((value) >> (32 - (bits))))
/* blk0() and blk() perform the initial expand. */
/* I got the idea of expanding during the round function from SSLeay */
#if BYTE_ORDER == LITTLE_ENDIAN
#define blk0(i) (block->l[i] = (rol(block->l[i],24)&0xFF00FF00) \
|(rol(block->l[i],8)&0x00FF00FF))
#elif BYTE_ORDER == BIG_ENDIAN
#define blk0(i) block->l[i]
#else
#error "Endianness not defined!"
#endif
#define blk(i) (block->l[i&15] = rol(block->l[(i+13)&15]^block->l[(i+8)&15] \
^block->l[(i+2)&15]^block->l[i&15],1))
@@ -61,26 +45,14 @@
#define R3(v,w,x,y,z,i) z+=(((w|x)&y)|(w&x))+blk(i)+0x8F1BBCDC+rol(v,5);w=rol(w,30);
#define R4(v,w,x,y,z,i) z+=(w^x^y)+blk(i)+0xCA62C1D6+rol(v,5);w=rol(w,30);
/* Hash a single 512-bit block. This is the core of the algorithm. */
STATIC void ICACHE_FLASH_ATTR SHA1Transform(uint32_t state[5], uint8_t buffer[64])
{
STATIC void ICACHE_FLASH_ATTR SHA1Transform(uint32_t state[5], uint8_t buffer[64]) {
uint32_t a, b, c, d, e;
typedef union {
unsigned char c[64];
uint32_t l[16];
} CHAR64LONG16;
#ifdef SHA1HANDSOFF
CHAR64LONG16 block[1]; /* use array to appear as a pointer */
memcpy(block, buffer, 64);
#else
/* The following had better never be used because it causes the
* pointer-to-const buffer to be cast into a pointer to non-const.
* And the result is written through. I threw a "const" in, hoping
* this will cause a diagnostic.
*/
CHAR64LONG16* block = (const CHAR64LONG16*)buffer;
#endif
/* Copy context->state[] to working vars */
a = state[0];
b = state[1];
@@ -116,18 +88,11 @@ CHAR64LONG16* block = (const CHAR64LONG16*)buffer;
state[4] += e;
/* Wipe variables */
a = b = c = d = e = 0;
#ifdef SHA1HANDSOFF
memset(block, '\0', sizeof(block));
#endif
}
/* SHA1Init - Initialize new context */
STATIC void ICACHE_FLASH_ATTR SHA1Init(SHA1_CTX* context)
{
/* SHA1 initialization constants */
context->state[0] = 0x67452301;
STATIC void ICACHE_FLASH_ATTR SHA1Init(SHA1_CTX* context) {
context->state[0] = 0x67452301; // six seven
context->state[1] = 0xEFCDAB89;
context->state[2] = 0x98BADCFE;
context->state[3] = 0x10325476;
@@ -135,13 +100,8 @@ STATIC void ICACHE_FLASH_ATTR SHA1Init(SHA1_CTX* context)
context->count[0] = context->count[1] = 0;
}
/* Run your data through this. */
STATIC void ICACHE_FLASH_ATTR SHA1Update(SHA1_CTX* context, uint8_t* data, uint32_t len)
{
uint32_t i;
uint32_t j;
STATIC void ICACHE_FLASH_ATTR SHA1Update(SHA1_CTX* context, uint8_t* data, uint32_t len) {
uint32_t i, j;
j = context->count[0];
if ((context->count[0] += len << 3) < j)
@@ -151,9 +111,7 @@ STATIC void ICACHE_FLASH_ATTR SHA1Update(SHA1_CTX* context, uint8_t* data, uint3
if ((j + len) > 63) {
memcpy(&context->buffer[j], data, (i = 64-j));
SHA1Transform(context->state, context->buffer);
for ( ; i + 63 < len; i += 64) {
SHA1Transform(context->state, &data[i]);
}
for ( ; i + 63 < len; i += 64) SHA1Transform(context->state, &data[i]);
j = 0;
}
else i = 0;
@@ -163,34 +121,15 @@ STATIC void ICACHE_FLASH_ATTR SHA1Update(SHA1_CTX* context, uint8_t* data, uint3
/* Add padding and return the message digest. */
STATIC void ICACHE_FLASH_ATTR SHA1Final(unsigned char digest[20], SHA1_CTX* context)
{
unsigned i;
unsigned char finalcount[8];
unsigned char c;
STATIC void ICACHE_FLASH_ATTR SHA1Final(unsigned char digest[20], SHA1_CTX* context) {
unsigned i;
unsigned char finalcount[8];
unsigned char c;
#if 0 /* untested "improvement" by DHR */
/* Convert context->count to a sequence of bytes
* in finalcount. Second element first, but
* big-endian order within element.
* But we do it all backwards.
*/
unsigned char *fcp = &finalcount[8];
for (i = 0; i < 2; i++)
{
uint32_t t = context->count[i];
int j;
for (j = 0; j < 4; t >>= 8, j++)
*--fcp = (unsigned char) t;
}
#else
for (i = 0; i < 8; i++) {
finalcount[i] = (unsigned char)((context->count[(i >= 4 ? 0 : 1)]
>> ((3-(i & 3)) * 8) ) & 255); /* Endian independent */
}
#endif
c = 0200;
SHA1Update(context, &c, 1);
while ((context->count[0] & 504) != 448) {
@@ -206,4 +145,3 @@ unsigned char c;
memset(context, '\0', sizeof(*context));
memset(&finalcount, '\0', sizeof(finalcount));
}
/* ================ end of sha1.c ================ */
+1 -10
View File
@@ -13,15 +13,10 @@
100% Public Domain
*/
#ifndef SHA1_H_
#define SHA1_H_
#pragma once
#ifdef ESP32
#define ICACHE_FLASH_ATTR
#define STATIC static
#else
#define STATIC
#endif
typedef struct {
uint32_t state[5];
@@ -33,7 +28,3 @@ STATIC void SHA1Transform(uint32_t state[5], uint8_t buffer[64]);
STATIC void SHA1Init(SHA1_CTX* context);
STATIC void SHA1Update(SHA1_CTX* context, uint8_t* data, uint32_t len);
STATIC void SHA1Final(unsigned char digest[20], SHA1_CTX* context);
#endif /* SHA1_H_ */
/* ================ end of sha1.h ================ */
-48
View File
@@ -1,48 +0,0 @@
#define TFT_NOP 0x00
#define TFT_INVOFF 0x20
#define TFT_INVON 0x21
#define TFT_CASET 0x2A
#define TFT_PASET 0x2B
#define TFT_RAMWR 0x2C
#define TFT_RAMRD 0x2E
#define TFT_IDXRD 0xDD
#define TFT_MADCTL 0x36
#define TFT_MAD_MY 0x80
#define TFT_MAD_MX 0x40
#define TFT_MAD_MV 0x20
#define TFT_MAD_ML 0x10
#define TFT_MAD_BGR 0x08
#define TFT_MAD_MH 0x04
#define TFT_MAD_RGB 0x00
#define ILI9341_SLPOUT 0x11
#define ILI9341_NORON 0x13
#define ILI9341_GAMMASET 0x26
#define ILI9341_DISPON 0x29
#define ILI9341_MADCTL 0x36
#define ILI9341_PIXFMT 0x3A
#define ILI9341_FRMCTR1 0xB1
#define ILI9341_DFUNCTR 0xB6
#define ILI9341_PWCTR1 0xC0
#define ILI9341_PWCTR2 0xC1
#define ILI9341_VMCTR1 0xC5
#define ILI9341_VMCTR2 0xC7
#define ILI9341_GMCTRP1 0xE0
#define ILI9341_GMCTRN1 0xE1
#define ILI9341_MADCTL_MY 0x80
#define ILI9341_MADCTL_MX 0x40
#define ILI9341_MADCTL_MV 0x20
#define ILI9341_MADCTL_ML 0x10
#define ILI9341_MADCTL_RGB 0x00
#define ILI9341_MADCTL_BGR 0x08
#define ILI9341_MADCTL_MH 0x04
+1 -1
View File
@@ -105,7 +105,7 @@
writecommand(ILI9341_SLPOUT); //Exit Sleep
end_tft_write();
delay(80);
delay(60);
begin_tft_write();
writecommand(ILI9341_DISPON); //Display on
+258 -1867
View File
File diff suppressed because it is too large Load Diff
+87 -134
View File
@@ -1,5 +1,7 @@
#pragma once
#define FONT_COUNT 7
#include <Arduino.h>
#define SPI_FREQUENCY 7500000
@@ -52,11 +54,59 @@
#define TFT_WIDTH 240
#define TFT_HEIGHT 320
#include <ILI9341_Defines.h>
#define TFT_NOP 0x00
#define TFT_INVOFF 0x20
#define TFT_INVON 0x21
#define TFT_CASET 0x2A
#define TFT_PASET 0x2B
#define TFT_RAMWR 0x2C
#define TFT_RAMRD 0x2E
#define TFT_IDXRD 0xDD
#define TFT_MADCTL 0x36
#define TFT_MAD_MY 0x80
#define TFT_MAD_MX 0x40
#define TFT_MAD_MV 0x20
#define TFT_MAD_ML 0x10
#define TFT_MAD_BGR 0x08
#define TFT_MAD_MH 0x04
#define TFT_MAD_RGB 0x00
#define ILI9341_SLPOUT 0x11
#define ILI9341_NORON 0x13
#define ILI9341_GAMMASET 0x26
#define ILI9341_DISPON 0x29
#define ILI9341_MADCTL 0x36
#define ILI9341_PIXFMT 0x3A
#define ILI9341_FRMCTR1 0xB1
#define ILI9341_DFUNCTR 0xB6
#define ILI9341_PWCTR1 0xC0
#define ILI9341_PWCTR2 0xC1
#define ILI9341_VMCTR1 0xC5
#define ILI9341_VMCTR2 0xC7
#define ILI9341_GMCTRP1 0xE0
#define ILI9341_GMCTRN1 0xE1
#define ILI9341_MADCTL_MY 0x80
#define ILI9341_MADCTL_MX 0x40
#define ILI9341_MADCTL_MV 0x20
#define ILI9341_MADCTL_ML 0x10
#define ILI9341_MADCTL_RGB 0x00
#define ILI9341_MADCTL_BGR 0x08
#define ILI9341_MADCTL_MH 0x04
#include <pgmspace.h>
#include "soc/spi_reg.h"
#include "soc/rtc.h"
#include "driver/spi_master.h"
#include "hal/gpio_ll.h"
@@ -78,7 +128,7 @@
#define WR_L
#define WR_H
#define TFT_MISO -1
#define TFT_MISO 19
#define TFT_MOSI 23
#define TFT_SCLK 18
#define TFT_CS 5
@@ -114,7 +164,7 @@
// Write same value twice
#define tft_Write_32D(C) TFT_WRITE_BITS((uint16_t)((C)<<8 | (C)>>8)<<16 | (uint16_t)((C)<<8 | (C)>>8), 32)
#define tft_Read_8() transfer(0)
#define tft_Read_8() spi_transfer(0)
#define DAT8TO32(P) ( (uint32_t)P[0]<<8 | P[1] | P[2]<<24 | P[3]<<16 )
@@ -169,30 +219,7 @@
// Convenient for 8-bit and 16-bit transparent sprites.
#define TFT_TRANSPARENT 0x0120 // This is actually a dark green
// Default palette for 4-bit colour sprites
static const uint16_t default_4bit_palette[] PROGMEM = {
TFT_BLACK, // 0 ^
TFT_BROWN, // 1 |
TFT_RED, // 2 |
TFT_ORANGE, // 3 |
TFT_YELLOW, // 4 Colours 0-9 follow the resistor colour code!
TFT_GREEN, // 5 |
TFT_BLUE, // 6 |
TFT_PURPLE, // 7 |
TFT_DARKGREY, // 8 |
TFT_WHITE, // 9 v
TFT_CYAN, // 10 Blue+green mix
TFT_MAGENTA, // 11 Blue+red mix
TFT_MAROON, // 12 Darker red colour
TFT_DARKGREEN,// 13 Darker green colour
TFT_NAVY, // 14 Darker blue colour
TFT_PINK // 15
};
typedef uint16_t (*getColorCallback)(uint16_t x, uint16_t y);
class TFT_eSPI { friend class TFT_eSprite;
public:
void setSPISpeed(uint8_t speed_Mhz);
TFT_eSPI(int16_t _W = TFT_WIDTH, int16_t _H = TFT_HEIGHT);
@@ -206,7 +233,6 @@ class TFT_eSPI { friend class TFT_eSprite;
virtual int16_t height(),
width();
virtual uint16_t readPixel(int32_t x, int32_t y);
virtual void setWindow(int32_t xs, int32_t ys, int32_t xe, int32_t ye);
virtual void pushColor(uint16_t color);
virtual void begin_nin_write();
@@ -217,9 +243,7 @@ class TFT_eSPI { friend class TFT_eSprite;
void setAddrWindow(int32_t xs, int32_t ys, int32_t w, int32_t h);
void setViewport(int32_t x, int32_t y, int32_t w, int32_t h, bool vpDatum = true);
void resetViewport();
bool clipWindow(int32_t* xs, int32_t* ys, int32_t* xe, int32_t* ye);
void pushColor(uint16_t color, uint32_t len);
void pushColors(uint16_t *data, uint32_t len, bool swap = true);
void pushBlock(uint16_t color, uint32_t len);
void pushPixels(const void * data_in, uint32_t len);
void fillScreen(uint32_t color),
@@ -229,22 +253,12 @@ class TFT_eSPI { friend class TFT_eSprite;
void drawCircleHelper(int32_t x, int32_t y, int32_t r, uint8_t cornername, uint32_t color),
fillCircle(int32_t x, int32_t y, int32_t r, uint32_t color),
fillCircleHelper(int32_t x, int32_t y, int32_t r, uint8_t cornername, int32_t delta, uint32_t color),
drawEllipse(int16_t x, int16_t y, int32_t rx, int32_t ry, uint16_t color),
fillEllipse(int16_t x, int16_t y, int32_t rx, int32_t ry, uint16_t color),
fillTriangle(int32_t x1,int32_t y1, int32_t x2,int32_t y2, int32_t x3,int32_t y3, uint32_t color);
uint16_t drawPixel(int32_t x, int32_t y, uint32_t color, uint8_t alpha, uint32_t bg_color = 0x00FFFFFF);
void drawArc(int32_t x, int32_t y, int32_t r, int32_t ir, uint32_t startAngle, uint32_t endAngle, uint32_t fg_color, uint32_t bg_color, bool smoothArc = true);
void drawSmoothCircle(int32_t x, int32_t y, int32_t r, uint32_t fg_color, uint32_t bg_color);
void fillSmoothCircle(int32_t x, int32_t y, int32_t r, uint32_t color, uint32_t bg_color = 0x00FFFFFF);
void drawSmoothRoundRect(int32_t x, int32_t y, int32_t r, int32_t ir, int32_t w, int32_t h, uint32_t fg_color, uint32_t bg_color = 0x00FFFFFF, uint8_t quadrants = 0xF);
void fillSmoothRoundRect(int32_t x, int32_t y, int32_t w, int32_t h, int32_t radius, uint32_t color, uint32_t bg_color = 0x00FFFFFF);
void drawWedgeLine(float ax, float ay, float bx, float by, float aw, float bw, uint32_t fg_color, uint32_t bg_color = 0x00FFFFFF);
void setSwapBytes(bool swap);
bool getSwapBytes();
void drawBitmap( int16_t x, int16_t y, const uint8_t *bitmap, int16_t w, int16_t h, uint16_t fgcolor),
drawBitmap( int16_t x, int16_t y, const uint8_t *bitmap, int16_t w, int16_t h, uint16_t fgcolor, uint16_t bgcolor),
setBitmapColor(uint16_t fgcolor, uint16_t bgcolor);
void setPivot(int16_t x, int16_t y);
drawBitmap( int16_t x, int16_t y, const uint8_t *bitmap, int16_t w, int16_t h, uint16_t fgcolor, uint16_t bgcolor);
void pushImage(int32_t x, int32_t y, int32_t w, int32_t h, uint16_t *data);
void pushImage(int32_t x, int32_t y, int32_t w, int32_t h, uint16_t *data, uint16_t transparent);
void pushImage(int32_t x, int32_t y, int32_t w, int32_t h, const uint16_t *data, uint16_t transparent);
@@ -254,17 +268,8 @@ class TFT_eSPI { friend class TFT_eSprite;
void pushImage(int32_t x, int32_t y, int32_t w, int32_t h, const uint8_t *data, bool bpp8, uint16_t *cmap = nullptr);
// Text rendering - value returned is the pixel width of the rendered text
int16_t drawNumber(long intNumber, int32_t x, int32_t y, uint8_t font), // Draw integer using specified font number
drawNumber(long intNumber, int32_t x, int32_t y), // Draw integer using current font
// Decimal is the number of decimal places to render
// Use with setTextDatum() to position values on TFT, and setTextPadding() to blank old displayed values
drawFloat(float floatNumber, uint8_t decimal, int32_t x, int32_t y, uint8_t font), // Draw float using specified font number
drawFloat(float floatNumber, uint8_t decimal, int32_t x, int32_t y), // Draw float using current font
// Handle char arrays
// Use with setTextDatum() to position string on TFT, and setTextPadding() to blank old displayed strings
drawString(const char *string, int32_t x, int32_t y, uint8_t font), // Draw string using specified font number
int16_t drawString(const char *string, int32_t x, int32_t y, uint8_t font), // Draw string using specified font number
drawString(const char *string, int32_t x, int32_t y), // Draw string using current font
drawString(const String& string, int32_t x, int32_t y, uint8_t font),// Draw string using specified font number
drawString(const String& string, int32_t x, int32_t y); // Draw string using current font
@@ -274,34 +279,27 @@ class TFT_eSPI { friend class TFT_eSprite;
setCursor(int16_t x, int16_t y, uint8_t font);
void setTextColor(uint16_t color), // Set character (glyph) color only (background not over-written)
setTextColor(uint16_t fgcolor, uint16_t bgcolor, bool bgfill = false), // Set character (glyph) foreground and background colour, optional background fill for smooth fonts
setTextSize(uint8_t size); // Set character size multiplier (this increases pixel size)
void setTextWrap(bool wrapX, bool wrapY = false); // Turn on/off wrapping of text in TFT width and/or height
setTextColor(uint16_t fgcolor, uint16_t bgcolor, bool bgfill = false); // Set character (glyph) foreground and background colour, optional background fill for smooth fonts
void setTextDatum(uint8_t datum); // Set text datum position (default is top left), see Section 5 above
void setTextPadding(uint16_t x_width); // Set text padding (background blanking) width in pixels
void setTextFont(uint8_t font); // Set the font number to use in future
int16_t textWidth(const char *string, uint8_t font), // Returns pixel width of string in specified font
textWidth(const char *string), // Returns pixel width of string in current font
textWidth(const String& string, uint8_t font), // As above for String types
textWidth(const String& string),
fontHeight(uint8_t font), // Returns pixel height of specified font
fontHeight(); // Returns pixel height of current font
fontHeight(uint8_t font); // Returns pixel height of specified font
inline int16_t fontHeight() { return fontHeight(textfont); }
// Used by library and Smooth font class to extract Unicode point codes from a UTF8 encoded string
uint16_t decodeUTF8(uint8_t *buf, uint16_t *index, uint16_t remaining),
decodeUTF8(uint8_t c);
void spiwrite(uint8_t); // legacy support only
void writecommand(uint8_t c); // Send an 8-bit command, function resets DC/RS high ready for data
void writedata(uint8_t d); // Send data with DC/RS set high
// Colour conversion
// Convert 8-bit red, green and blue to 16 bits
uint16_t color565(uint8_t red, uint8_t green, uint8_t blue);
inline uint16_t color565(uint8_t r, uint8_t g, uint8_t b) { return ((r & 0xF8) << 8) | ((g & 0xFC) << 3) | (b >> 3); }
// Alpha blend 2 colours, see generic "alphaBlend_Test" example
// alpha = 0 = 100% background colour
@@ -311,12 +309,7 @@ class TFT_eSPI { friend class TFT_eSprite;
// 16-bit colour alphaBlend with alpha dither (dither reduces colour banding)
uint16_t alphaBlend(uint8_t alpha, uint16_t fgc, uint16_t bgc, uint8_t dither);
uint8_t spiBusyCheck = 0; // Number of ESP32 transfer buffers to check
// Bare metal functions
void startWrite(); // Begin SPI transaction
void writeColor(uint16_t color, uint32_t len); // Deprecated, use pushBlock()
void endWrite(); // End SPI transaction
inline void writeColor(uint16_t color, uint32_t len) { pushBlock(color, len); }
// Global variables
uint32_t textcolor, textbgcolor; // Text foreground and background colours
@@ -324,7 +317,6 @@ class TFT_eSPI { friend class TFT_eSprite;
uint32_t bitmap_fg, bitmap_bg; // Bitmap foreground (bit=1) and background (bit=0) colours
uint8_t textfont, // Current selected font number
textsize, // Current font size multiplier
textdatum, // Text reference datum
rotation; // Display rotation (0-3)
@@ -351,24 +343,20 @@ class TFT_eSPI { friend class TFT_eSprite;
uint16_t maxDescent; // Maximum descent found in font
} fontMetrics;
fontMetrics gFonts[7] = {
{ nullptr, 0, 0, 0, 0, 0, 0, 0 },
{ nullptr, 0, 0, 0, 0, 0, 0, 0 },
{ nullptr, 0, 0, 0, 0, 0, 0, 0 },
{ nullptr, 0, 0, 0, 0, 0, 0, 0 },
{ nullptr, 0, 0, 0, 0, 0, 0, 0 },
{ nullptr, 0, 0, 0, 0, 0, 0, 0 },
fontMetrics gFonts[FONT_COUNT] = {
{ nullptr, 0, 0, 0, 0, 0, 0, 0 }
};
// These are for the metrics for each individual glyph (so we don't need to seek this in file and waste time)
uint16_t* gUnicode[7] = {NULL, NULL, NULL, NULL, NULL, NULL, NULL}; //UTF-16 code, the codes are searched so do not need to be sequential
uint8_t* gHeight[7] = {NULL, NULL, NULL, NULL, NULL, NULL, NULL}; //cheight
uint8_t* gWidth[7] = {NULL, NULL, NULL, NULL, NULL, NULL, NULL}; //cwidth
uint8_t* gxAdvance[7] = {NULL, NULL, NULL, NULL, NULL, NULL}; //setWidth
int16_t* gdY[7] = {NULL, NULL, NULL, NULL, NULL, NULL, NULL}; //topExtent
int8_t* gdX[7] = {NULL, NULL, NULL, NULL, NULL, NULL, NULL}; //leftExtent
uint32_t* gBitmap[7] = {NULL, NULL, NULL, NULL, NULL, NULL, NULL}; //file pointer to greyscale bitmap
uint16_t* gUnicode[FONT_COUNT] = {NULL}; //UTF-16 code, the codes are searched so do not need to be sequential
uint8_t* gHeight[FONT_COUNT] = {NULL}; //cheight
uint8_t* gWidth[FONT_COUNT] = {NULL}; //cwidth
uint8_t* gxAdvance[FONT_COUNT] = {NULL}; //setWidth
int16_t* gdY[FONT_COUNT] = {NULL}; //topExtent
int8_t* gdX[FONT_COUNT] = {NULL}; //leftExtent
uint32_t* gBitmap[FONT_COUNT] = {NULL}; //file pointer to greyscale bitmap
bool fontOwned[FONT_COUNT] = {false};
uint8_t getTouchRaw(uint16_t *x, uint16_t *y);
uint16_t getTouchRawZ();
@@ -378,33 +366,20 @@ class TFT_eSPI { friend class TFT_eSprite;
void calibrateTouch(uint16_t *data, uint32_t color_fg, uint32_t color_bg, uint8_t size);
void setTouch(uint16_t *data);
//--------------------------------------- private ------------------------------------//
void begin_tft_write();
void end_tft_write();
void begin_tft_read();
void end_tft_read();
private:
inline void begin_tft_write() __attribute__((always_inline));
inline void end_tft_write() __attribute__((always_inline));
inline void begin_tft_read() __attribute__((always_inline));
inline void end_tft_read() __attribute__((always_inline));
void initBus();
void pushSwapBytePixels(const void* data_in, uint32_t len);
void readAddrWindow(int32_t xs, int32_t ys, int32_t w, int32_t h);
uint8_t readByte();
void busDir(uint32_t mask, uint8_t mode);
void gpioMode(uint8_t gpio, uint8_t mode);
uint8_t sqrt_fraction(uint32_t num);
float wedgeLineDistance(float pax, float pay, float bax, float bay, float dr);
getColorCallback getColor = nullptr; // Smooth font callback function pointer
void loadMetrics(uint8_t font); // Function of Fear, which is Unhandled Exception, writing to 0x000000000
void loadMetrics(uint8_t font);
uint32_t readInt32();
uint8_t* fontPtr = nullptr;
@@ -412,16 +387,11 @@ class TFT_eSPI { friend class TFT_eSprite;
//-------------------------------------- protected ----------------------------------//
protected:
uint8_t spi_write_speed;
//int32_t win_xe, win_ye; // Window end coords - not needed
uint8_t spi_write_speed;
int32_t _init_width, _init_height; // Display w/h as input, used by setRotation()
int32_t _width, _height; // Display w/h as modified by current rotation
int32_t addr_row, addr_col; // Window position - used to minimise window commands
int16_t _xPivot; // TFT x pivot point coordinate for rotated Sprites
int16_t _yPivot; // TFT x pivot point coordinate for rotated Sprites
// Viewport variables
int32_t _vpX, _vpY, _vpW, _vpH; // Note: x start, y start, x end + 1, y end + 1
int32_t _xDatum;
@@ -431,11 +401,10 @@ uint8_t spi_write_speed;
bool _vpDatum;
bool _vpOoB;
int32_t cursor_x, cursor_y, padX;
int32_t cursor_x, cursor_y;
int32_t bg_cursor_x;
int32_t last_cursor_x;
bool isDigits;
bool textwrapX, textwrapY;
bool _swapBytes;
@@ -459,17 +428,10 @@ class TFT_eSprite : public TFT_eSPI {
public:
explicit TFT_eSprite(TFT_eSPI *tft);
~TFT_eSprite();
void* createSprite(int16_t width, int16_t height, uint8_t frames = 1);
void* createSprite(int16_t width = TFT_WIDTH, int16_t height = TFT_HEIGHT);
void* getPointer();
bool created();
inline bool created() {return _created; }
void deleteSprite();
void* setColorDepth(int8_t b);
int8_t getColorDepth();
void createPalette(uint16_t *palette = nullptr, uint8_t colors = 16);
void createPalette(const uint16_t *palette = nullptr, uint8_t colors = 16);
void setPaletteColor(uint8_t index, uint16_t color);
uint16_t getPaletteColor(uint8_t index);
void setBitmapColor(uint16_t fg, uint16_t bg);
void drawPixel(int32_t x, int32_t y, uint32_t color);
void fillSprite(uint32_t color),
setWindow(int32_t x0, int32_t y0, int32_t x1, int32_t y1),
@@ -480,10 +442,8 @@ class TFT_eSprite : public TFT_eSPI {
drawFastVLine(int32_t x, int32_t y, int32_t h, uint32_t color),
drawFastHLine(int32_t x, int32_t y, int32_t w, uint32_t color),
fillRect(int32_t x, int32_t y, int32_t w, int32_t h, uint32_t color);
uint16_t readPixel(int32_t x0, int32_t y0);
uint16_t readPixelValue(int32_t x, int32_t y);
void pushImage(int32_t x0, int32_t y0, int32_t w, int32_t h, uint16_t *data, uint8_t sbpp = 0);
void pushImage(int32_t x0, int32_t y0, int32_t w, int32_t h, const uint16_t *data);
inline void pushImage(int32_t x, int32_t y, int32_t w, int32_t h, const uint16_t *data) { pushImage(x, y, w, h, (uint16_t*) data); }
void pushSprite(int32_t x, int32_t y);
void pushSprite(int32_t x, int32_t y, uint16_t transparent);
bool pushSprite(int32_t tx, int32_t ty, int32_t sx, int32_t sy, int32_t sw, int32_t sh);
@@ -492,23 +452,18 @@ class TFT_eSprite : public TFT_eSPI {
int16_t width(),
height();
void drawGlyph(uint16_t code, uint16_t font);
void copyFontFromTFT(uint8_t source, uint8_t destination);
void copyAllFontsFromTFT();
private:
TFT_eSPI *_tft;
void* callocSprite(int16_t width, int16_t height, uint8_t frames = 1);
void* callocSprite(int16_t width, int16_t height);
protected:
uint8_t _bpp; // bits per pixel (1, 4, 8 or 16)
uint16_t *_img; // pointer to 16-bit sprite
uint8_t *_img8; // pointer to 1 and 8-bit sprite frame 1 or frame 2
uint8_t *_img4; // pointer to 4-bit sprite (uses color map)
uint8_t *_img8_1; // pointer to frame 1
uint8_t *_img8_2; // pointer to frame 2
uint16_t *_colorMap; // color map pointer: 16 entries, used with 4-bit color map.
int32_t _sinra; // Sine of rotation angle in fixed point
int32_t _cosra; // Cosine of rotation angle in fixed point
@@ -521,13 +476,11 @@ class TFT_eSprite : public TFT_eSPI {
uint32_t _scolor;
int32_t _iwidth, _iheight; // Sprite memory image bit width and height (swapped during rotations)
int32_t _dwidth, _dheight; // Real sprite width and height (for <8bpp Sprites)
int32_t _bitwidth; // Sprite image bit width for drawPixel (for <8bpp Sprites, not swapped)
int32_t _dwidth, _dheight; // Real sprite width and height
};
template <typename T> static inline void transpose(T& a, T& b) { T t = a; a = b; b = t; }
template <typename A, typename F, typename B> static inline uint16_t fastBlend(A alpha, F fgc, B bgc)
{
template <typename A, typename F, typename B> static inline uint16_t fastBlend(A alpha, F fgc, B bgc) {
// Split out and blend 5-bit red and blue channels
uint32_t rxb = bgc & 0xF81F;
rxb += ((fgc & 0xF81F) - rxb) * (alpha >> 2) >> 6;
-674
View File
@@ -1,674 +0,0 @@
GNU GENERAL PUBLIC LICENSE
Version 3, 29 June 2007
Copyright (C) 2007 Free Software Foundation, Inc. <https://fsf.org/>
Everyone is permitted to copy and distribute verbatim copies
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<https://www.gnu.org/licenses/why-not-lgpl.html>.
-77
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@@ -1,77 +0,0 @@
/*!
* @file WC_AP_HTML.h
*
* HTML snippets to build the Access Point portal and the Parameters Portal.
*
* Written by Stuart Blair
*
* GNU General Public License v3.0 licence, all text here must be included in any redistribution and you should receive a copy of the license file.
*
*/
#ifndef WC_AP_HTML
#define WC_AP_HTML ///< Define to stop re-inclusion
/*! \def char AP_HTTP_HEAD[] PROGMEM
Start of HTML output
*/
const char AP_HTTP_HEAD[] PROGMEM = "<!DOCTYPE html><html lang=\"en\"><head><meta charset=\"utf-8\"><meta name=\"viewport\" content=\"width=device-width, initial-scale=1, user-scalable=no\"/><title>{v}</title>";
/*! \def AP_HTTP_STYLE[] PROGMEM
Style for our access point
*/
const char AP_HTTP_STYLE[] PROGMEM = "<style type=\"text/css\">h1 { font-weight: normal; } .msgbox { font-size:1.2rem; line-height: 1.8em; padding: 0.5em; background-color: #ddffff; border-left: 6px solid #ccc; margin-bottom:1em; } .c{text-align:center}div,input{padding:5px;font-size:1em}input{width:95%;margin-top:5px;margin-bottom:10px}body{text-align:center;font-family:verdana;}button{border:0;border-radius:.3rem;background-color:#1fa3ec;color:#fff;line-height:2.6rem;font-size:1.2rem;width:100%}.q{float:right;width:64px;text-align:right}.l{background:url(data:image/png;base64,iVBORw0KGgoAAAANSUhEUgAAACAAAAAgCAMAAABEpIrGAAAALVBMVEX///8EBwfBwsLw8PAzNjaCg4NTVVUjJiZDRUUUFxdiZGSho6OSk5Pg4eFydHTCjaf3AAAAZElEQVQ4je2NSw7AIAhEBamKn97/uMXEGBvozkWb9C2Zx4xzWykBhFAeYp9gkLyZE0zIMno9n4g19hmdY39scwqVkOXaxph0ZCXQcqxSpgQpONa59wkRDOL93eAXvimwlbPbwwVAegLS1HGfZAAAAABJRU5ErkJggg==) no-repeat left center;background-size:1em;}.cfail,.cok{text-align:center; font-size:1.2rem; line-height: 2em; margin-top: 1em; padding: 0.7em; display:none;} .cfail{color: #FFFFFF;background-color: #ff8433;} .cok{ background-color: #6aff33;}</style>";
/** Scripts for our page */
const char AP_HTTP_SCRIPT[] PROGMEM = "<script>function c(l){document.getElementById('s').value=l.innerText||l.textContent;document.getElementById('p').focus();}</script>";
/** End of the header section and beginning of the body */
const char AP_HTTP_HEAD_END[] PROGMEM = "</head><body><div style='text-align:left;display:inline-block;min-width:260px;'>";
/** Start of our HTMl configuration Form */
const char AP_HTTP_PORTAL_OPTIONS[] PROGMEM = "<div class=\"msgbox\">Connect this device to a WiFi network. Select the option to find a WiFi network.</div><form action=\"/wifi\" method=\"get\"><button>Configure WiFi (Auto Scan)</button></form><br/><form action=\"/0wifi\" method=\"get\"><button style=\"background-color:#bbbbbb;\">Configure WiFi (Manual)</button></form><!--<br/><form action=\"/i\" method=\"get\"><button>Info</button></form><br/></form>-->";
/** HTML snippet for wifi scanning */
const char AP_HTTP_ITEM[] PROGMEM = "<div><a href='#p' onclick='c(this)'>{v}</a>&nbsp;<span class='q {i}'>{r}%</span></div>";
/** HTML form for saving wifi connection details */
const char AP_HTTP_FORM_START[] PROGMEM ="<form method=\"post\" action=\"wifisave\"><label>Enter WiFi Name ('SSID'):</label><input id=\"s\" name=\"s\" length=32 placeholder=\"Example: Home_Network_2002\"><label>Enter WiFi Password:</label><input id=\"p\" name=\"p\" length=64 type=\"password\" placeholder=\"Password123\"><br/>";;
/** HTML snippet for our custom parameters */
const char AP_HTTP_FORM_PARAM[] PROGMEM = "<br/><input id='{i}' name='{n}' maxlength={l} placeholder='{p}' value='{v}' {c}>";
/** The end of our HTML Form */
const char AP_HTTP_FORM_END[] PROGMEM = "<br/><button type='submit'>Save and Connect</button></form>";
/** HTML snippet to recan for networks */
const char AP_HTTP_SCAN_LINK[] PROGMEM = "<br/><div class=\"c\"><a href=\"/wifi\">Re-scan</a></div>";
/** HTML snippet for saved confirmation */
// https://stackoverflow.com/questions/20760635/why-does-setting-xmlhttprequest-responsetype-before-calling-open-throw
// https://esprima.org/demo/validate.html
// https://javascript-minifier.com/
/* Use JavaScript to ping the ESP periodically @ the AP IP address.
* If it comes back as an AP again then we know the connection to the WiFi didn't work.
* We wait about 30 seconds to determine this outcome. This isn't 100% foolproof, but should be good enough.
*/
/*
<script type="text/javascript">
function doPing() {
//if ( timeout_count > 20 ) {
if ( attempt_count > 20 ) { // wait about a minute
window.clearInterval(myPinger), document.getElementById("conn_ok").style.display = "block"
}
var o = new XMLHttpRequest;
o.onload = function() {
console.log(this.responseText), document.getElementById("conn_fail").style.display = "block", window.clearInterval(myPinger)
}, o.ontimeout = function(o) {
console.log("Timeout Counter is: " + timeout_count++)
}, o.open("GET", "/foo"), o.timeout = 1000, o.send(null), console.log("Ping counter is: " + attempt_count++)
}
attempt_count = 0;
timeout_count = 0;
var myPinger = window.setInterval(doPing, 3000);
</script>
*/
const char AP_HTTP_SAVED[] PROGMEM = "<div>Credentials Saved.<br />Attempting to connect to WiFi network. Please wait.... <br /><script type=\"text/javascript\">function doPing(){attempt_count>20&&(window.clearInterval(myPinger),document.getElementById(\"conn_ok\").style.display=\"block\");var t=new XMLHttpRequest;t.onload=function(){console.log(this.responseText),document.getElementById(\"conn_fail\").style.display=\"block\",window.clearInterval(myPinger)},t.ontimeout=function(t){console.log(\"Timeout Counter is: \"+timeout_count++)},t.open(\"GET\",\"/foo\"),t.timeout=1e3,t.send(null),console.log(\"Ping counter is: \"+attempt_count++)}attempt_count=0,timeout_count=0;var myPinger=window.setInterval(doPing,3e3);</script><div class=\"cok\" id=\"conn_ok\">Connected to {ap} !<br />You may now close this window. </div><div class=\"cfail\" id=\"conn_fail\">Failed to connect to {ap}!<br /><a href=\"/\">Click here</a> to try again.</div></div>";
/** End of the HTML page */
const char AP_HTTP_END[] PROGMEM = "</div></body></html>";
/** HTML snippet for our custom parameters portal form */
const char AP_HTTP_PORTAL_PARAM_OPTIONS[] PROGMEM = "<form action=\"/params\" method=\"get\"><button>Configure Parameters</button></form><br/><form action=\"/i\" method=\"get\"><button>Info</button></form><br/>";
/** HTML snippet for our custom parameters save */
const char AP_HTTP_FORM_PARAM_START[] PROGMEM ="<form method=\"get\" action=\"wifisave\">";
#endif
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-189
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@@ -1,189 +0,0 @@
/*!
@file WiFiConnect.h
This is the documentation for WiFiConnect for the Arduino platform.
It is a WiFi connection manager for use with the popular ESP8266 and ESP32 chips.
It contains a captive portal to allow easy connection and changing of WiFi netwoks
via a web based interface and allows for additional user parameters.
You can view the project at <a href="https://github.com/smurf0969/WiFiConnect">https://github.com/smurf0969/WiFiConnect</a>.
Further information is also available in the project <a href="https://github.com/smurf0969/WiFiConnect/wiki">Wiki</a>.
This is a heavily customised version from the origional <a href="https://github.com/tzapu/WiFiManager">WiFiManager</a>
developed by https://github.com/tzapu .
This library depends on <a href="https://github.com/esp8266/Arduino">
ESP8266 Arduino Core</a> and <a href="https://github.com/espressif/arduino-esp32">ESP32 Arduino Core</a> being present on your system.
Please make sure you have installed the latest version before using this library.
Written by Stuart Blair.
GNU General Public License v3.0 licence, all text here must be included in any redistribution and you should receive a copy of the license file.
*/
#ifndef WiFiConnect_h
#define WiFiConnect_h
#include <Arduino.h>
#if defined(ESP8266)
#include <ESP8266WiFi.h>
#include <ESP8266WebServer.h>
#else
#include <WiFi.h>
#include <FS.h>
using fs::FS;
#include <WebServer.h>
#endif
#include <DNSServer.h>
#include <memory>
#if defined(ESP8266)
extern "C" {
#include "user_interface.h"
}
#define ESP_getChipId() (ESP.getChipId()) ///< Gets an ID from the chip
#else
#include <esp_wifi.h>
#define ESP_getChipId() ((uint32_t)ESP.getEfuseMac())///< Gets an ID from the chip
#endif
#include "WC_AP_HTML.h"
#include "WiFiConnectParam.h"
/** Options for how a access point should continue if no WiFi connected */
enum AP_Continue {
AP_NONE, ///< No action, continues to run code
AP_LOOP, ///< Stalls execution with an infinate loop
AP_RESTART, ///< Restarts the chip, allowing it to try to setup again. Handy for sensors when wifi is lost.
AP_RESET, ///< Same as AP_RESTART
AP_WAIT // Keep the AP and webserver running, sit quietly and be patient.
};
/**************************************************************************/
/*!
@brief Class that helps to connect to WiFi networks, that also has
captive portal web interface for configuration.
This is the base class for WiFiConntectOLED which displays
information on a OLED display.
*/
/**************************************************************************/
class WiFiConnect {
public:
/// Create WiFiConnect class
WiFiConnect();
boolean startConfigurationPortal();
boolean startConfigurationPortal(AP_Continue apcontinue);
boolean startConfigurationPortal(AP_Continue apcontinue, const char* apName, const char* apPassword = NULL, bool paramsMode = false);
boolean startParamsPortal();
boolean startParamsPortal(AP_Continue apcontinue);
boolean startParamsPortal(AP_Continue apcontinue, const char* apName, const char* apPassword = NULL);
void addParameter(WiFiConnectParam *p);
void setAPName(const char* apName);
const char* getAPName();
void resetSettings();
boolean autoConnect();
boolean autoConnect(const char* ssidName, const char* ssidPassword = NULL, WiFiMode_t acWiFiMode = WIFI_STA);
//sets a custom ip /gateway /subnet configuration
void setAPStaticIPConfig(IPAddress ip, IPAddress gw, IPAddress sn);
//sets config for a static IP
void setSTAStaticIPConfig(IPAddress ip, IPAddress gw, IPAddress sn);
//called when AP mode and config portal is started
void setAPCallback( void (*func)(WiFiConnect*) );
//called when settings have been changed and connection was successful
void setSaveConfigCallback( void (*func)() );
void setDebug(boolean isDebug);
void setRetryAttempts(int attempts);
void setConnectionTimeoutSecs(int timeout);
void setAPModeTimeoutMins(int mins);
boolean captivePortal();
//helpers
const char* statusToString(int state);
int getRSSIasQuality(int RSSI);
boolean isIp(String str);
String toStringIp(IPAddress ip);
virtual void displayTurnOFF(int ms = 5000); ///< Virtual method overriden in WiFiConnectOLED
virtual void displayLoop(); ///< Virtual method overriden in WiFiConnectOLED
virtual void displayON(); ///< Virtual method overriden in WiFiConnectOLED
protected:
boolean _debug = false; ///< Flag to determine wheter to output mesages or not
template <typename Generic>
void DEBUG_WC(Generic text);
virtual void displayConnecting(int attempt, int totalAttempts); ///< Virtual method overriden in WiFiConnectOLED
virtual void displayConnected(); ///< Virtual method overriden in WiFiConnectOLED
virtual void displayAP(); ///< Virtual method overriden in WiFiConnectOLED
virtual void displayParams(); ///< Virtual method overriden in WiFiConnectOLED
virtual void displayManualReset(); ///< Virtual method overriden in WiFiConnectOLED
private:
int _retryAttempts = 3; ///< Number of attempts when trying to connect to WiFi network
int _connectionTimeoutSecs = 10; ///< How log to wait for the connection to succeed or fail
int _apTimeoutMins = 3; ///< The amount of minutes of inactivity before the access point exits it routine
// DNS server
const byte DNS_PORT = 53; ///< Standard DNS Port number
long _lastAPPage = 0; ///< The last time a page was accessed in the portal. Used for the inactivity timeout.
boolean _removeDuplicateAPs = true; ///< Flag to remove duplicate networks from scan results.
int _minimumQuality = 8; ///< The minimum netqork quality to be included in scan results.
int _paramsCount = 0; ///< The amount of custom parameters added via addParameter
boolean _readyToConnect = false; ///< Flag used in access point to determine if it should try to connect to the network.
String _ssid = " "; ///< Tempory holder for the network ssid
String _password = " "; ///< Tempory holder for the network password
WiFiConnectParam* _params[WiFiConnect_MAX_PARAMS]; ///< Array to hold custom parameters
std::unique_ptr<DNSServer> dnsServer; ///< DNS Server for captive portal to redirect to Access Point
#ifdef ESP8266
std::unique_ptr<ESP8266WebServer> server; ///< Web server for serving access point pages
#else
std::unique_ptr<WebServer> server; ///< Web server for serving access point pages
#endif
char _apName[33] ; ///< Holder for the access point name
char _apPassword[65] ; ///< Holder for the access point password
IPAddress _ap_static_ip; ///< Variable for holding Static IP Address for the access point
IPAddress _ap_static_gw; ///< Variable for holding Static Gateway IP Address for the access point
IPAddress _ap_static_sn; ///< Variable for holding Static Subnet Mask IP Address for the access point
IPAddress _sta_static_ip; ///< Variable for holding Static IP Address for the network connection
IPAddress _sta_static_gw; ///< Variable for holding Static Gateway IP Address for the network connection
IPAddress _sta_static_sn; ///< Variable for holding Static Subnet Mask IP Address for the network connection
void (*_apcallback)(WiFiConnect*) = NULL;
void (*_savecallback)() = NULL;
void handleRoot();
void handleParamRoot();
void handleParams();
void handleWifi(boolean scan);
void handleWifiSave();
void handleInfo();
void handleReset();
void handle204();
void handleNotFound();
template <class T>
auto optionalIPFromString(T *obj, const char *s) -> decltype( obj->fromString(s) ) {
return obj->fromString(s);
}
auto optionalIPFromString(...) -> bool {
DEBUG_WC("NO fromString METHOD ON IPAddress, you need ESP8266 core 2.1.0 or newer for Custom IP configuration to work.");
return false;
}
};
#endif
-166
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@@ -1,166 +0,0 @@
/*!
@file WiFiConnectParam.cpp
WiFi Connection Manager with Captive Portal
Introduction
This is the documentation for WiFiConnect for the Arduino platform.
It is a WiFi connection manager for use with the popular ESP8266 and ESP32 chips.
It contains a captive portal to allow easy connection and changing of WiFi netwoks
via a web based interface and allows for additional user parameters.
It can also display messages via a OLED screen see WiFiConnectOLED class.
This is a heavily customised version from the original <a href="https://github.com/tzapu/WiFiManager">WiFiManager</a>
developed by https://github.com/tzapu .
Dependencies
This library depends on <a href="https://github.com/esp8266/Arduino">
ESP8266 Arduino Core</a> and <a href="https://github.com/espressif/arduino-esp32">ESP32 Arduino Core</a> being present on your system.
Please make sure you have installed the latest version before using this library.
Written by Stuart Blair.
License
GNU General Public License v3.0 licence, all text here must be included in any redistribution and you should receive a copy of the license file.
*/
#include "WiFiConnectParam.h"
/**************************************************************************/
/*!
@brief Class object initialiser
@param custom
Custom HTML to be displayed in the access point for this item.
*/
/**************************************************************************/
WiFiConnectParam::WiFiConnectParam(const char *custom) {
_id = NULL;
_placeholder = NULL;
_length = 0;
_value = NULL;
_customHTML = custom;
}
/**************************************************************************/
/*!
@brief Class object initialiser
@param id
The unique ID for the html input box markup for this item
@param placeholder
Text to be displayed as the input box placeholder for this item
@param defaultValue
Default text to be displayed in the input box for this item
@param length
The maximum input text length for this item
*/
/**************************************************************************/
WiFiConnectParam::WiFiConnectParam(const char *id, const char *placeholder, const char *defaultValue, int length) {
init(id, placeholder, defaultValue, length, "");
}
/**************************************************************************/
/*!
@brief Class object initialiser
@param id
The unique ID for the html input box markup for this item
@param placeholder
Text to be displayed as the input box placeholder for this item
@param defaultValue
Default text to be displayed in the input box for this item
@param length
The maximum input text length for this item
@param custom
Custom HTML to be displayed in the access point for this item.
*/
/**************************************************************************/
WiFiConnectParam::WiFiConnectParam(const char *id, const char *placeholder, const char *defaultValue, int length, const char *custom) {
init(id, placeholder, defaultValue, length, custom);
}
/**************************************************************************/
/*!
@brief Initialiser method
@param id
The unique ID for the html input box markup for this item
@param placeholder
Text to be displayed as the input box placeholder for this item
@param defaultValue
Default text to be displayed in the input box for this item
@param length
The maximum input text length for this item
@param custom
Custom HTML to be displayed in the access point for this item.
*/
/**************************************************************************/
void WiFiConnectParam::init(const char *id, const char *placeholder, const char *defaultValue, int length, const char *custom) {
_id = id;
_placeholder = placeholder;
_length = length;
setValue(defaultValue);
_customHTML = custom;
}
/**************************************************************************/
/*!
@brief Method to change the current value of the item
@param newValue
The new string value for the item
*/
/**************************************************************************/
void WiFiConnectParam::setValue(const char *newValue){
if(_length>0){
_value = new char[_length + 1];
for (int i = 0; i < _length; i++) {
_value[i] = 0;
}
if (newValue != NULL) {
strncpy(_value, newValue, _length);
}
}
}
/**************************************************************************/
/*!
@brief Function to get the current value of the item
@return The current value
*/
/**************************************************************************/
const char* WiFiConnectParam::getValue() {
return _value;
}
/**************************************************************************/
/*!
@brief Function to get the current id of the item
@return The current id
*/
/**************************************************************************/
const char* WiFiConnectParam::getID() {
return _id;
}
/**************************************************************************/
/*!
@brief Function to get the current placeholder text of the item
@return The current placeholder text
*/
/**************************************************************************/
const char* WiFiConnectParam::getPlaceholder() {
return _placeholder;
}
/**************************************************************************/
/*!
@brief Function to get the maximum length allowed for the value of the item
@return The current maximum value length
*/
/**************************************************************************/
int WiFiConnectParam::getValueLength() {
return _length;
}
/**************************************************************************/
/*!
@brief Function to get the current custom html markup of the item
@return The current custom html markup
*/
/**************************************************************************/
const char* WiFiConnectParam::getCustomHTML() {
return _customHTML;
}
-68
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@@ -1,68 +0,0 @@
/*!
@file WiFiConnectParam.h
WiFi Connection Manager with Captive Portal
Introduction
This is the documentation for WiFiConnect for the Arduino platform.
It is a WiFi connection manager for use with the popular ESP8266 and ESP32 chips.
It contains a captive portal to allow easy connection and changing of WiFi netwoks
via a web based interface and allows for additional user parameters.
It can also display messages via a OLED screen see WiFiConnectOLED class.
This is a heavily customised version from the original <a href="https://github.com/tzapu/WiFiManager">WiFiManager</a>
developed by https://github.com/tzapu .
Dependencies
This library depends on <a href="https://github.com/esp8266/Arduino">
ESP8266 Arduino Core</a> and <a href="https://github.com/espressif/arduino-esp32">ESP32 Arduino Core</a> being present on your system.
Please make sure you have installed the latest version before using this library.
Written by Stuart Blair.
License
GNU General Public License v3.0 licence, all text here must be included in any redistribution and you should receive a copy of the license file.
*/
#ifndef WIFI_CONNECT_PARAM
#define WIFI_CONNECT_PARAM
#ifndef WiFiConnect_MAX_PARAMS
#define WiFiConnect_MAX_PARAMS 10 ///< The maximum size of the param array and how many custom parameters we may have
#endif
#include <Arduino.h>
/**************************************************************************/
/*!
@brief Class that stores a custom parameter
*/
/**************************************************************************/
class WiFiConnectParam {
public:
WiFiConnectParam(const char *custom);
WiFiConnectParam(const char *id, const char *placeholder, const char *defaultValue, int length);
WiFiConnectParam(const char *id, const char *placeholder, const char *defaultValue, int length, const char *custom);
const char *getID();
const char *getValue();
const char *getPlaceholder();
int getValueLength();
const char *getCustomHTML();
void setValue(const char *newValue);
private:
const char *_id;
const char *_placeholder;
char *_value;
int _length;
const char *_customHTML;
void init(const char *id, const char *placeholder, const char *defaultValue, int length, const char *custom);
friend class WiFiConnect; ///< Declarion for WiFiConnect class
};
#endif
-15
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@@ -1,15 +0,0 @@
{
"name": "WifiConnect",
"version": "1.0",
"description": "A WiFi Manager for ESP8266 or ESP32",
"authors":
[
{
"name": "Stuart Blair",
"email": "stuart@bfam.co.uk",
"maintainer": true
}
],
"frameworks": "arduino",
"platforms": "espressif8266, espressif32"
}
+44 -23
View File
@@ -1,65 +1,86 @@
#include "NTPupdate.h"
// Sends an NTP request packet to the specified server address
void sendNTPpacket(IPAddress &address) {
byte packetBuffer[NTP_PACKET_SIZE] = {0}; // Initialize buffer with zeros
// Set NTP packet header fields as per NTP protocol
packetBuffer[0] = 0b11100011; // LI, Version, Mode
packetBuffer[2] = 6; // Polling interval
packetBuffer[3] = 0xEC; // Peer clock precision
// Root Delay & Root Dispersion fields
packetBuffer[12] = 49;
packetBuffer[13] = 0x4E;
packetBuffer[14] = 49;
packetBuffer[15] = 52;
// Send the NTP request to port 123 (NTP standard port)
Udp.beginPacket(address, 123);
Udp.write(packetBuffer, NTP_PACKET_SIZE);
Udp.endPacket();
}
time_t getNtpTime() {
IPAddress ntpServerIP;
byte packetBuffer[NTP_PACKET_SIZE];
static uint8_t _ntpState = 0;
static unsigned long _ntpSendMs = 0;
static constexpr unsigned long NTP_TIMEOUT_MS = 1500;
// Starts an NTP request (non-blocking). Call ntpPoll() in loop to process the reply.
void NTPupdate() {
if (!wifi || WiFi.status() != WL_CONNECTED) {
NTPupdated = false;
return;
}
IPAddress ntpServerIP;
// Clear any previously received UDP packets
while (Udp.parsePacket() > 0);
if (!WiFi.hostByName(ntpServerName, ntpServerIP)) return 0;
// Resolve the NTP server's hostname to its IP address
if (!WiFi.hostByName(ntpServerName, ntpServerIP)) {
NTPupdated = false;
radio.rds.ctupdate = true;
return;
}
// Send an NTP request and enter waiting state
sendNTPpacket(ntpServerIP);
_ntpState = 1;
_ntpSendMs = millis();
}
void ntpPoll() {
if (_ntpState != 1) return;
byte packetBuffer[NTP_PACKET_SIZE];
uint32_t startWait = millis();
while (millis() - startWait < 1500) {
if (Udp.parsePacket() >= NTP_PACKET_SIZE) {
Udp.read(packetBuffer, NTP_PACKET_SIZE);
// Extract "seconds since 1900" from the packet (bytes 40-43)
unsigned long secsSince1900 =
((unsigned long)packetBuffer[40] << 24) |
((unsigned long)packetBuffer[41] << 16) |
((unsigned long)packetBuffer[42] << 8) |
(unsigned long)packetBuffer[43];
return secsSince1900 - 2208988800UL;
}
}
// Convert to UNIX epoch time (seconds since 1970)
time_t currentTime = secsSince1900 - 2208988800UL;
return 0;
}
void NTPupdate() {
if (!wifi) {
NTPupdated = false;
return;
}
time_t currentTime = getNtpTime();
if (currentTime) {
set_time(currentTime);
rtc.setTime(currentTime);
set_time(currentTime, Timezone);
rtcset = true;
NTPupdated = true;
radio.rds.ctupdate = false;
} else {
_ntpState = 0;
return;
}
// Timeout
if (millis() - _ntpSendMs >= NTP_TIMEOUT_MS) {
NTPupdated = false;
radio.rds.ctupdate = true;
_ntpState = 0;
}
}
+2 -3
View File
@@ -19,14 +19,13 @@ RdsPiBuffer::State RdsPiBuffer::add(uint16_t value, bool error) {
return this->getState(value);
}
void RdsPiBuffer::clear(){
void RdsPiBuffer::clear() {
this->fill = 0;
this->pos = (uint8_t)-1;
}
RdsPiBuffer::State RdsPiBuffer::getState(uint16_t value) {
uint8_t count = 0;
uint8_t correctCount = 0;
uint8_t count = 0, correctCount = 0;
for (uint8_t i = 0; i < this->fill; i++) {
if (this->buff[i] == value) {
+94 -96
View File
@@ -24,13 +24,13 @@ void TEF6686::TestAFEON() {
setMute();
for (int x = 0; x < af_counter; x++) {
timing = 0;
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 3, af[x].frequency);
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 3, af[x].frequency);
while (timing == 0 && !bitRead(timing, 15)) {
devTEF_Radio_Get_Quality_Status(&status, &aflevel, &afusn, &afwam, &afoffset, NULL, NULL, NULL);
devTEF_Radio_Get_Quality_Data(&status, &aflevel, &afusn, &afwam, &afoffset, NULL, NULL);
timing = lowByte(status);
}
if (afoffset > -125 || afoffset < 125) {
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 4, af[x].frequency);
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 4, af[x].frequency);
delay(187);
devTEF_Radio_Get_RDS_Status(&rds.rdsStat, &rds.rdsA, &rds.rdsB, &rds.rdsC, &rds.rdsD, &rds.rdsErr);
@@ -46,7 +46,7 @@ void TEF6686::TestAFEON() {
}
}
}
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 4, currentfreq);
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 4, currentfreq);
setUnMute();
}
@@ -56,14 +56,14 @@ uint16_t TEF6686::TestAF() {
int16_t aflevel, afoffset, currentoffset, currentlevel;
byte timing;
devTEF_Radio_Get_Quality_Status(&status, &currentlevel, &currentusn, &currentwam, &currentoffset, NULL, NULL, NULL);
devTEF_Radio_Get_Quality_Data(&status, &currentlevel, &currentusn, &currentwam, &currentoffset, NULL, NULL);
devTEF_Radio_Get_RDS_Status(&rds.rdsStat, &rds.rdsA, &rds.rdsB, &rds.rdsC, &rds.rdsD, &rds.rdsErr);
for (int x = 0; x < af_counter; x++) {
timing = 0;
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 3, af[x].frequency);
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 3, af[x].frequency);
while (timing == 0 && !bitRead(timing, 15)) {
devTEF_Radio_Get_Quality_Status(&status, &aflevel, &afusn, &afwam, &afoffset, NULL, NULL, NULL);
devTEF_Radio_Get_Quality_Data(&status, &aflevel, &afusn, &afwam, &afoffset, NULL, NULL);
timing = lowByte(status);
}
af[x].score = aflevel - afusn - afwam;
@@ -81,7 +81,7 @@ uint16_t TEF6686::TestAF() {
}
if (af_counter != 0 && af[highestIndex].afvalid && af[highestIndex].score > (currentlevel - currentusn - currentwam) && (af[highestIndex].score - (currentlevel - currentusn - currentwam)) >= 70) {
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 4, af[highestIndex].frequency);
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 4, af[highestIndex].frequency);
delay(187);
devTEF_Radio_Get_RDS_Status(&rds.rdsStat, &rds.rdsA, &rds.rdsB, &rds.rdsC, &rds.rdsD, &rds.rdsErr);
if (bitRead(rds.rdsStat, 9)) {
@@ -96,9 +96,9 @@ uint16_t TEF6686::TestAF() {
af_counter = 0;
} else {
af[highestIndex].afvalid = false;
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 4, currentfreq);
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 4, currentfreq);
}
} else devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 4, currentfreq);
} else devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 4, currentfreq);
}
}
return currentfreq;
@@ -109,7 +109,7 @@ void TEF6686::init(byte TEF) {
Wire.setClock(400000);
Tuner_Reset();
while(devTEF_APPL_Get_Operation_Status() != 0) delay(2);
while(devTEF_APPL_Get_Operation_Status() != 0) delay(1);
uint32_t clock = 12000000;
@@ -130,106 +130,106 @@ void TEF6686::init(byte TEF) {
while(devTEF_APPL_Get_Operation_Status() != 1) delay(2); // Wait for it to load
if(clock != 9216000) devTEF_Set_Cmd(TEF_APPL, Cmd_Set_ReferenceClock, 6, (clock >> 16) & 0xffff, clock & 0xffff, (clock == 55466670) ? 1 : 0);
devTEF_Set_Cmd(TEF_APPL, Cmd_Set_Activate, 2, 1); // Setup done, start radio
if(clock != 9216000) devTEF_Set_Cmd(TEF_APPL, Cmd_Set_ReferenceClock, 3, (clock >> 16) & 0xffff, clock & 0xffff, (clock == 55466670) ? 1 : 0);
devTEF_Set_Cmd(TEF_APPL, Cmd_Set_Activate, 1, 1); // Setup done, start radio
while(devTEF_APPL_Get_Operation_Status() != 2) delay(2); // Wait for it to start
while(devTEF_APPL_Get_Operation_Status() != 2) delay(1); // Wait for it to start
devTEF_Set_Cmd(TEF_FM, Cmd_Set_LevelStep, 7, 0xffff, 0xffff, 0xffff, 0xffff, 0xfffc, 0xfff8, 0x0);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Mph, 3, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Max, 2, 0, 4000);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_LowCut_Max, 2, 1, 60);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Time, 4, 60, 120, 100, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Time, 4, 500, 2000, 200, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Level, 3, 0, 600, 240);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Noise, 3, 0, 160, 140);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Mph, 3, 0, 160, 140);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Max, 2, 0, 4000);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Ana_Out, 2, 128, 1);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Output_Source, 2, 128, 224);
Wire.setClock(old_clock);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Mph, 6, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Max, 4, 0, 4000);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_LowCut_Max, 4, 0, 100);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Time, 8, 60, 120, 100, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Time, 8, 500, 2000, 200, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Level, 6, 0, 600, 240);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Noise, 6, 0, 160, 140);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Mph, 6, 0, 160, 140);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Max, 4, 0, 4000);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Ana_Out, 4, 128, 1);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Output_Source, 4, 128, 224);
uint16_t device;
getIdentification(&device, NULL, NULL);
uint16_t device = getIdentification(NULL, NULL);
if(device == 1 || device == 3) fullsearchrds = true;
}
void TEF6686::getIdentification(uint16_t *device, uint16_t *hw_version, uint16_t *sw_version) {
uint16_t TEF6686::getIdentification(uint16_t *hw_version, uint16_t *sw_version) {
uint8_t buf[6];
devTEF_Get_Cmd(TEF_APPL, Cmd_Get_Identification, buf, sizeof(buf));
if(device != NULL) *device = Convert8bto16b(buf);
if(hw_version != NULL) *hw_version = Convert8bto16b(buf + 2);
if(sw_version != NULL) *sw_version = Convert8bto16b(buf + 4);
return Convert8bto16b(buf);
}
void TEF6686::power(bool mode) {
devTEF_Set_Cmd(TEF_APPL, Cmd_Set_OperationMode, 2, mode);
devTEF_Set_Cmd(TEF_APPL, Cmd_Set_OperationMode, 1, mode);
}
void TEF6686::extendBW(bool yesno) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Bandwidth_Options, 2, (yesno ? 400 : 950));
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Bandwidth_Options, 1, (yesno ? 400 : 950));
}
void TEF6686::SetFreq(uint16_t frequency) {
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 4, 1, frequency);
devTEF_Set_Cmd(TEF_FM, Cmd_Tune_To, 2, 1, frequency);
currentfreq = ((frequency + 5) / 10) * 10;
currentfreq2 = frequency;
}
void TEF6686::SetFreqAM(uint16_t frequency) {
devTEF_Set_Cmd(TEF_AM, Cmd_Tune_To, 4, 1, frequency);
devTEF_Set_Cmd(TEF_AM, Cmd_Tune_To, 2, 1, frequency);
}
void TEF6686::setOffset(int8_t offset) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_LevelOffset, 2, (offset * 10) - 70);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_LevelOffset, 1, (offset * 10) - 70);
}
void TEF6686::setAMOffset(int8_t offset) {
devTEF_Set_Cmd(TEF_AM, Cmd_Set_LevelOffset, 2, (offset * 10) - 70);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_LevelOffset, 1, (offset * 10) - 70);
}
void TEF6686::setFMBandw(uint16_t bandwidth) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Bandwidth, 4, 0, bandwidth * 10);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Bandwidth, 2, 0, bandwidth * 10);
}
void TEF6686::setAMBandw(uint16_t bandwidth) {
devTEF_Set_Cmd(TEF_AM, Cmd_Set_Bandwidth, 4, 0, bandwidth * 10);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_Bandwidth, 2, 0, bandwidth * 10);
}
void TEF6686::setAMCoChannel(uint16_t start, uint8_t level) {
uint8_t mode = 1;
if(start == 0) mode = 0;
devTEF_Set_Cmd(TEF_AM, Cmd_Set_CoChannelDet, 8, mode, 2, start * 10, 1000, level);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_CoChannelDet, 4, mode, 2, start * 10, 1000, level);
}
void TEF6686::setSoftmuteAM(uint8_t mode) {
devTEF_Set_Cmd(TEF_AM, Cmd_Set_Softmute_Max, 4, mode, 250);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_Softmute_Max, 2, mode, 250);
}
void TEF6686::setSoftmuteFM(uint8_t mode) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Softmute_Max, 4, mode, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Softmute_Max, 2, mode, 200);
}
void TEF6686::setAMNoiseBlanker(uint16_t start) {
devTEF_Set_Cmd(TEF_AM, Cmd_Set_NoiseBlanker, 4, (start == 0) ? 0 : 1, (start == 0) ? 1000 : start * 10);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_NoiseBlanker_Audio, 4, (start == 0) ? 0 : 1, 1000);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_NoiseBlanker, 2, (start == 0) ? 0 : 1, (start == 0) ? 1000 : start * 10);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_NoiseBlanker_Audio, 2, (start == 0) ? 0 : 1, 1000);
}
void TEF6686::setAMAttenuation(uint16_t start) {
devTEF_Set_Cmd(TEF_AM, Cmd_Set_Antenna, 2, start * 10);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_Antenna, 1, start * 10);
}
void TEF6686::setFMABandw() {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Bandwidth, 4, 1, 3110);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Bandwidth, 2, 1, 3110);
}
void TEF6686::setiMS(bool mph) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_MphSuppression, 2, mph);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_MphSuppression, 1, mph);
}
void TEF6686::setEQ(bool eq) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_ChannelEqualizer, 2, eq);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_ChannelEqualizer, 1, eq);
}
bool TEF6686::getStereoStatus() {
@@ -244,128 +244,127 @@ bool TEF6686::getStereoStatus() {
}
void TEF6686::setMono(bool mono) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Min, 4, mono ? 2 : 0);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Min, 2, mono ? 2 : 0);
}
void TEF6686::setVolume(int8_t volume) {
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Volume, 2, volume * 10);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Volume, 1, volume * 10);
}
void TEF6686::setMute() {
mute = true;
if (mpxmode) devTEF_Set_Cmd(TEF_FM, Cmd_Set_Specials, 2, 0);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 2, 1);
if (mpxmode) devTEF_Set_Cmd(TEF_FM, Cmd_Set_Specials, 1, 0);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 1, 1);
}
void TEF6686::setUnMute() {
mute = false;
if (mpxmode) devTEF_Set_Cmd(TEF_FM, Cmd_Set_Specials, 2, 1);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 2, 0);
if (mpxmode) devTEF_Set_Cmd(TEF_FM, Cmd_Set_Specials, 1, 1);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 1, 0);
}
void TEF6686::setAGC(uint8_t agc) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_RFAGC, 2, agc * 10);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_RFAGC, 1, agc * 10);
}
void TEF6686::setAMAGC(uint8_t agc) {
devTEF_Set_Cmd(TEF_AM, Cmd_Set_RFAGC, 2, agc * 10);
devTEF_Set_Cmd(TEF_AM, Cmd_Set_RFAGC, 1, agc * 10);
}
void TEF6686::setDeemphasis(RADIO_FM_DEEMPHASIS timeconstant) {
switch (timeconstant) {
case DEEMPHASIS_50: devTEF_Set_Cmd(TEF_FM, Cmd_Set_Deemphasis, 2, 500); break;
case DEEMPHASIS_75: devTEF_Set_Cmd(TEF_FM, Cmd_Set_Deemphasis, 2, 750); break;
default: devTEF_Set_Cmd(TEF_FM, Cmd_Set_Deemphasis, 2, 0); break;
case DEEMPHASIS_50: devTEF_Set_Cmd(TEF_FM, Cmd_Set_Deemphasis, 1, 500); break;
case DEEMPHASIS_75: devTEF_Set_Cmd(TEF_FM, Cmd_Set_Deemphasis, 1, 750); break;
default: devTEF_Set_Cmd(TEF_FM, Cmd_Set_Deemphasis, 1, 0); break;
}
}
void TEF6686::setAudio(uint8_t audio) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Specials, 2, audio);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Specials, 1, audio);
mpxmode = (audio != 0);
}
void TEF6686::setFMSI(uint8_t mode) {
if(mode > 2) mode = 2;
if(mode < 1) mode = 1;
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StereoImprovement, 2, mode-1);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StereoImprovement, 1, mode-1);
}
void TEF6686::setFMSI_Time(uint16_t attack, uint16_t decay) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StBandBlend_Time, 4, attack, decay);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StBandBlend_Time, 2, attack, decay);
}
void TEF6686::setFMSI_Gain(uint16_t band1, uint16_t band2, uint16_t band3, uint16_t band4) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StBandBlend_Gain, 8, band1 * 10, band2 * 10, band3 * 10, band4 * 10);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StBandBlend_Gain, 4, band1 * 10, band2 * 10, band3 * 10, band4 * 10);
}
void TEF6686::setFMSI_Bias(int16_t band1, int16_t band2, int16_t band3, int16_t band4) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StBandBlend_Bias, 8, band1 - 250, band2 - 250, band3 - 250, band4 - 250);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StBandBlend_Bias, 4, band1 - 250, band2 - 250, band3 - 250, band4 - 250);
}
void TEF6686::setFMNoiseBlanker(uint16_t start) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_NoiseBlanker, 4, (start == 0) ? 0 : 1, (start == 0) ? 1000 : (start * 10));
devTEF_Set_Cmd(TEF_FM, Cmd_Set_NoiseBlanker, 2, (start == 0) ? 0 : 1, (start == 0) ? 1000 : (start * 10));
}
void TEF6686::setStereoLevel(uint8_t start) {
if (start == 0) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Level, 6, 0, start * 10, 60);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Noise, 6, 0, 240, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Mph, 6, 0, 240, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Level, 3, 0, start * 10, 60);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Noise, 3, 0, 240, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Mph, 3, 0, 240, 200);
} else {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Level, 6, 3, start * 10, 60);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Noise, 6, 3, 240, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Mph, 6, 3, 240, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Level, 3, 3, start * 10, 60);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Noise, 3, 3, 240, 200);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Stereo_Mph, 3, 3, 240, 200);
}
}
void TEF6686::setHighCutOffset(uint8_t start) {
if (start == 0) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Level, 6, 0, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Noise, 6, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Mph, 6, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Level, 3, 0, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Noise, 3, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Mph, 3, 0, 360, 300);
} else {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Level, 6, 3, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Noise, 6, 3, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Mph, 6, 3, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Level, 3, 3, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Noise, 3, 3, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Mph, 3, 3, 360, 300);
}
}
void TEF6686::setHighCutLevel(uint16_t limit) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Max, 4, 1, limit * 100);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_Highcut_Max, 2, 1, limit * 100);
}
void TEF6686::setStHiBlendLevel(uint16_t limit) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Max, 4, 1, limit * 100);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Max, 2, 1, limit * 100);
}
void TEF6686::setStHiBlendOffset(uint8_t start) {
if (start == 0) {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Level, 6, 0, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Noise, 6, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Mph, 6, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Level, 3, 0, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Noise, 3, 0, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Mph, 3, 0, 360, 300);
} else {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Level, 6, 3, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Noise, 6, 3, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Mph, 6, 3, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Level, 3, 3, start * 10, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Noise, 3, 3, 360, 300);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_StHiBlend_Mph, 3, 3, 360, 300);
}
}
void TEF6686::getStatus(int16_t *level, uint16_t *USN, uint16_t *WAM, int16_t *offset, uint16_t *bandwidth, uint16_t *modulation, int8_t *snr) {
devTEF_Radio_Get_Quality_Status(NULL, level, USN, WAM, offset, bandwidth, modulation, snr);
void TEF6686::getStatus(int16_t *level, uint16_t *USN, uint16_t *WAM, int16_t *offset, uint16_t *bandwidth, uint16_t *audiolevel) {
devTEF_Radio_Get_Quality_Data(NULL, level, USN, WAM, offset, bandwidth, audiolevel);
}
void TEF6686::getStatusAM(int16_t *level, uint16_t *noise, uint16_t *cochannel, int16_t *offset, uint16_t *bandwidth, uint16_t *modulation, int8_t *snr) {
void TEF6686::getStatusAM(int16_t *level, uint16_t *noise, uint16_t *cochannel, int16_t *offset, uint16_t *bandwidth, uint16_t *audiolevel) {
uint8_t buf[14];
devTEF_Get_Cmd(TEF_AM, Cmd_Get_Quality_Data, buf, sizeof(buf));
devTEF_Get_Cmd(TEF_AM, Cmd_Get_Quality_Status, buf, sizeof(buf));
if(level != NULL) *level = Convert8bto16b(buf + 2);
if(noise != NULL) *noise = Convert8bto16b(buf + 4);
if(cochannel != NULL) *cochannel = Convert8bto16b(buf + 6);
if(offset != NULL) *offset = Convert8bto16b(buf + 8);
if(bandwidth != NULL) *bandwidth = Convert8bto16b(buf + 10) / 10;
if(modulation != NULL) *modulation = Convert8bto16b(buf + 12) / 10;
if(audiolevel != NULL) *audiolevel = Convert8bto16b(buf + 12) / 10;
if(level != NULL && *level < -200) *level = -200;
if(level != NULL && *level > 1200) *level = 1200;
if(snr != NULL) *snr = int(0.46222375 * (float)(*level) / 10 - 0.082495118 * (float)(*noise / 50) / 10) + 10;
}
void TEF6686::readRDS(byte showrdserrors) {
@@ -449,7 +448,7 @@ void TEF6686::readRDS(byte showrdserrors) {
fs::File file;
if (rds.region == 1 && SPIFFS.begin(true)) {
delay(2);
delay(1);
if (currentfreq2 < 9000) file = SPIFFS.open("/USA_87-90.csv");
else if (currentfreq2 > 9000 && currentfreq2 < 9200) file = SPIFFS.open("/USA_90-92.csv");
else if (currentfreq2 > 9200 && currentfreq2 < 9400) file = SPIFFS.open("/USA_92-94.csv");
@@ -461,7 +460,6 @@ void TEF6686::readRDS(byte showrdserrors) {
else if (currentfreq2 > 10400 && currentfreq2 < 10600) file = SPIFFS.open("/USA_104-106.csv");
else if (currentfreq2 > 10600) file = SPIFFS.open("/USA_106-108.csv");
delay(2);
if (file) {
int i = 0;
while (file.available() && !isprint(file.peek())) {
@@ -1271,7 +1269,7 @@ void TEF6686::readRDS(byte showrdserrors) {
rds.offset = timeoffset;
rtcset = true;
if (!NTPupdated) set_time(rdstime + timeoffset);
if (!NTPupdated) set_time(rdstime, timeoffset / 3600);
} else rds.hasCT = false;
lastrdstime = rdstime;
lasttimeoffset = timeoffset;
@@ -1449,7 +1447,7 @@ void TEF6686::readRDS(byte showrdserrors) {
if (offset == 13 && eon[eonIndex].pi == rds.rdsD) {
eon[eonIndex].taset = true;
eon[eonIndex].ta = bitRead(rds.rdsC, 0);
eon[eonIndex].pty = (rds.rdsC >> 11) & 0xF;
eon[eonIndex].pty = (rds.rdsC >> 11) & 0x1F;
eon[eonIndex].ptyset = true;
}
@@ -1562,7 +1560,7 @@ void TEF6686::readRDS(byte showrdserrors) {
}
void TEF6686::clearRDS() {
devTEF_Set_Cmd(TEF_FM, Cmd_Set_RDS, 6, fullsearchrds ? 3 : 1, 1, 0);
devTEF_Set_Cmd(TEF_FM, Cmd_Set_RDS, 3, fullsearchrds ? 3 : 1, 1, 0);
rds.piBuffer.clear();
rds.stationName = rds.stationText = rds.stationNameLong = "";
rds.PTYN = rds.stationText32 = rds.RTContent1 = rds.RTContent2 = "";;
@@ -1651,11 +1649,11 @@ void TEF6686::clearRDS() {
void TEF6686::tone(uint16_t time, int16_t amplitude, uint16_t frequency) {
auto was_muted = mute;
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 2, 0);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 1, 0);
devTEF_Radio_Set_Wavegen(1, amplitude, frequency);
delay(time);
devTEF_Radio_Set_Wavegen(0, 0, 0);
if(was_muted) devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 2, 1);
if(was_muted) devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Mute, 1, 1);
}
void TEF6686::RDScharConverter(const char* input, wchar_t* output, size_t size, bool underscore) {
+25 -24
View File
@@ -2,53 +2,54 @@
#include <stdarg.h>
void devTEF_Set_Cmd(TEF_MODULE module, uint8_t cmd, uint16_t len, ...) {
uint16_t i, temp;
uint8_t buf[20];
if(len > 10) return;
uint8_t buf[22];
va_list vArgs;
va_start(vArgs, len);
buf[0] = module;
buf[1] = cmd;
buf[2] = 1;
for (i = 0; i < len; i++) {
temp = va_arg(vArgs, int);
buf[3 + i++] = High_16bto8b(temp);
buf[3 + i] = Low_16bto8b(temp);
for (uint16_t i = 0; i < len; i++) {
uint16_t temp = va_arg(vArgs, int);
buf[3 + 2*i] = High_16bto8b(temp);
buf[3 + 2*i + 1] = Low_16bto8b(temp);
}
va_end(vArgs);
Tuner_WriteBuffer(buf, len + 3);
Tuner_WriteBuffer(buf, len * 2 + 3);
}
bool devTEF_Get_Cmd(TEF_MODULE module, uint8_t cmd, uint8_t *receive, uint16_t len) {
uint8_t buf[3];
buf[0] = module;
buf[1] = cmd;
buf[2] = 1;
uint8_t buf[3] = {module, cmd, 1};
Tuner_WriteBuffer(buf, 3);
Tuner_WriteBuffer(buf, sizeof(buf));
return Tuner_ReadBuffer(receive, len);
}
uint8_t devTEF_APPL_Get_Operation_Status() {
uint8_t buf[2];
while(!devTEF_Get_Cmd(TEF_APPL, Cmd_Get_Operation_Status, buf, sizeof(buf))) delay(3);
while(!devTEF_Get_Cmd(TEF_APPL, Cmd_Get_Operation_Status, buf, sizeof(buf))) delay(2);
return Convert8bto16b(buf);
}
void devTEF_Radio_Get_Quality_Status(uint16_t *status, int16_t *level, uint16_t *usn, uint16_t *wam, int16_t *offset, uint16_t *bandwidth, uint16_t *mod, int8_t *snr) {
void devTEF_Radio_Get_Quality_Data(uint16_t *status, int16_t *level, uint16_t *usn, uint16_t *wam, int16_t *offset, uint16_t *bandwidth, uint16_t *audiolevel) {
uint8_t buf[14];
devTEF_Get_Cmd(TEF_FM, Cmd_Get_Quality_Data, buf, sizeof(buf));
int16_t _level = Convert8bto16b(buf + 2);
if (_level < -200) _level = -200;
if (_level > 1200) _level = 1200;
uint16_t _usn = Convert8bto16b(buf + 4);
uint16_t _wam = Convert8bto16b(buf + 6);
if(status != NULL) *status = Convert8bto16b(buf);
if(level != NULL) *level = Convert8bto16b(buf + 2);
if(usn != NULL) *usn = Convert8bto16b(buf + 4);
if(wam != NULL) *wam = Convert8bto16b(buf + 6);
if(level != NULL) *level = _level;
if(usn != NULL) *usn = _usn;
if(wam != NULL) *wam = _wam;
if(offset != NULL) *offset = Convert8bto16b(buf + 8);
if(bandwidth != NULL) *bandwidth = Convert8bto16b(buf + 10) / 10;
if(mod != NULL) *mod = Convert8bto16b(buf + 12) / 10;
if (*level < -200) *level = -200;
if (*level > 1200) *level = 1200;
if(snr != NULL) *snr = int(0.46222375 * (float)(*level) / 10 - 0.082495118 * (float)(*usn) / 10) + 10;
if(audiolevel != NULL) *audiolevel = Convert8bto16b(buf + 12) / 10;
}
void devTEF_Radio_Get_RDS_Status(uint16_t *status, uint16_t *A_block, uint16_t *B_block, uint16_t *C_block, uint16_t *D_block, uint16_t *dec_error) {
@@ -74,7 +75,7 @@ void devTEF_Radio_Get_RDS_Data(uint16_t *status, uint16_t *A_block, uint16_t *B_
}
void devTEF_Radio_Set_Wavegen(bool mode, int16_t amplitude, uint16_t freq) {
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Input, 2, mode ? 240 : 0);
if (mode) devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_WaveGen, 12, 5, 0, amplitude * 10, freq, amplitude * 10, freq);
else devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_WaveGen, 12, 0);
devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_Input, 1, mode ? 240 : 0);
if (mode) devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_WaveGen, 6, 5, 0, amplitude * 10, freq, amplitude * 10, freq);
else devTEF_Set_Cmd(TEF_AUDIO, Cmd_Set_WaveGen, 6, 0);
}
+4 -6
View File
@@ -5,7 +5,7 @@
bool Tuner_WriteBuffer(unsigned char *buf, uint16_t len) {
Wire.beginTransmission(TEF668X_ADDRESS);
for (uint16_t i = 0; i < len; i++) Wire.write(buf[i]);
Wire.write(buf, len);
uint8_t r = Wire.endTransmission();
if (!Data_Accelerator) delay(1);
return (r == 0) ? true : false;
@@ -13,17 +13,15 @@ bool Tuner_WriteBuffer(unsigned char *buf, uint16_t len) {
bool Tuner_ReadBuffer(unsigned char *buf, uint16_t len) {
Wire.requestFrom(TEF668X_ADDRESS, len);
if (Wire.available() == len) {
if (Wire.available() >= len) {
for (uint16_t i = 0; i < len; i++) buf[i] = Wire.read();
return true;
}
return false;
} return false;
}
static void Tuner_Patch_Load(const unsigned char *pLutBytes, uint16_t size) {
unsigned char buf[24 + 1];
uint16_t i, len;
uint16_t r;
buf[0] = 0x1b;
while (size) {
@@ -33,7 +31,7 @@ static void Tuner_Patch_Load(const unsigned char *pLutBytes, uint16_t size) {
for (i = 0; i < len; i++) buf[1 + i] = pgm_read_byte(&pLutBytes[i]);
pLutBytes += len;
if (1 != (r = Tuner_WriteBuffer(buf, len + 1))) break;
if(!Tuner_WriteBuffer(buf, len + 1)) break;
}
}
+621
View File
@@ -0,0 +1,621 @@
#include "WiFiConnect.h"
#include <SPIFFS.h>
#include "constants.h"
// ---- CSS for the captive portal ----
static const char TPL_STYLE[] PROGMEM =
"<style>"
"*{margin:0;padding:0;box-sizing:border-box}"
"body{font-family:-apple-system,'Segoe UI',system-ui,sans-serif;background:#202228;color:#fff;min-height:100vh}"
".w{max-width:440px;margin:0 auto;padding:20px 16px}"
".logo{display:block;margin:0 auto 8px;max-width:160px;height:auto}"
"h1{color:#5bd6ab;font-size:.92em;font-weight:600;text-transform:uppercase;letter-spacing:3px;"
"text-align:center;padding-bottom:12px;margin-bottom:18px;border-bottom:1px solid rgba(91,214,171,.15)}"
".msg{background:rgba(46,80,73,.3);border:1px solid rgba(60,127,106,.2);border-radius:12px;"
"padding:14px 18px;font-size:.88em;color:#a0a8b0;line-height:1.6;margin-bottom:20px;text-align:center}"
".cd{background:rgba(46,80,73,.12);border:1px solid rgba(60,127,106,.18);border-radius:14px;"
"padding:16px;margin-bottom:14px}"
".cd h2{font-size:.7em;color:#4db691;text-transform:uppercase;letter-spacing:1.5px;"
"margin-bottom:12px;font-weight:600;padding-left:10px;border-left:3px solid #4db691}"
"button,input[type=submit]{display:block;width:100%;padding:14px;background:#4db691;"
"color:#1a1c20;border:0;border-radius:12px;font-size:.92em;font-weight:600;"
"font-family:inherit;text-transform:uppercase;letter-spacing:.5px;cursor:pointer;"
"margin-bottom:8px;transition:background .2s}"
"button:hover{background:#5bd6ab}"
".alt{background:0 0;color:#8090a0;border:1px solid rgba(60,127,106,.3);"
"text-transform:none;font-weight:400;font-size:.82em;letter-spacing:0;padding:10px}"
".alt:hover{background:rgba(46,80,73,.2);color:#c0c8d0;border-color:#3c7f6a}"
"label{display:block;font-size:.7em;color:#6a7280;text-transform:uppercase;"
"letter-spacing:1px;margin:8px 0 4px;font-weight:500}"
"input[type=text],input[type=password]{display:block;width:100%;padding:11px 14px;"
"background:rgba(20,22,26,.5);border:1px solid rgba(60,127,106,.22);border-radius:10px;"
"color:#e0e4e8;font-size:.9em;font-family:inherit;margin-bottom:10px;outline:0;"
"transition:border .2s;-webkit-appearance:none}"
"input[type=text]:focus,input[type=password]:focus{border-color:#5bd6ab}"
"input::placeholder{color:#3a4250}"
".n{background:rgba(20,22,26,.35);border:1px solid rgba(60,127,106,.12);"
"border-radius:10px;padding:10px 12px;margin-bottom:5px;cursor:pointer;"
"display:flex;align-items:center;gap:10px;transition:border .2s}"
".n:hover{border-color:#3c7f6a}.n:active{border-color:#5bd6ab}"
".n span:first-child{color:#d0d4d8;flex:1;overflow:hidden;text-overflow:ellipsis;"
"white-space:nowrap;font-size:.88em}"
".q{display:flex;align-items:center;gap:5px;font-size:.72em;color:#505868;"
"font-family:ui-monospace,monospace;white-space:nowrap}"
".sig{display:flex;align-items:flex-end;gap:1px;height:12px}"
".sig i{display:block;width:3px;background:#1a2a24;border-radius:1px}"
".sig i:nth-child(1){height:3px}.sig i:nth-child(2){height:6px}"
".sig i:nth-child(3){height:9px}.sig i:nth-child(4){height:12px}"
".s1 i:nth-child(1){background:#f85149}"
".s2 i:nth-child(-n+2){background:#e8a838}"
".s3 i:nth-child(-n+3){background:#4db691}"
".s4 i{background:#5bd6ab}"
".lk{font-size:.55em;color:#505868;margin-left:1px}.lk::after{content:'\\1F512'}"
".ok,.fail{text-align:center;padding:18px;border-radius:14px;margin-top:16px;"
"display:none;line-height:1.6}"
".ok{background:rgba(46,80,73,.3);border:1px solid rgba(60,127,106,.2);color:#5bd6ab}"
".fail{background:rgba(74,32,32,.3);border:1px solid rgba(106,48,48,.2);color:#f85149}"
".fail a{color:#f85149}"
".ld::after{content:'';display:inline-block;width:22px;height:22px;"
"border:2px solid rgba(60,127,106,.2);border-top-color:#5bd6ab;"
"border-radius:50%;animation:r .7s linear infinite}"
"@keyframes r{to{transform:rotate(360deg)}}"
".ldw{text-align:center;padding:24px 0}"
".pt{color:#6a7280;font-size:.8em;margin:10px 0 2px;padding-top:8px;"
"border-top:1px solid rgba(60,127,106,.1)}"
".pw{position:relative}"
".pw input{padding-right:44px}"
".pw button{position:absolute;right:3px;top:3px;width:36px;height:calc(100% - 16px);"
"background:rgba(46,80,73,.3);border:0;border-radius:8px;padding:0;margin:0;"
"color:#506070;cursor:pointer;display:flex;align-items:center;justify-content:center;"
"text-transform:none;letter-spacing:0;font-size:.8em}"
".pw button:hover{color:#5bd6ab;background:rgba(46,80,73,.5)}"
".pw svg{width:16px;height:16px;fill:none;stroke:currentColor;stroke-width:1.5;"
"stroke-linecap:round;stroke-linejoin:round}"
".hn{display:flex;align-items:center;gap:8px;font-size:.8em;color:#506070;"
"margin:0 0 12px;cursor:pointer;font-weight:400;text-transform:none;letter-spacing:0}"
".hn input{width:auto;margin:0;accent-color:#4db691;-webkit-appearance:auto;appearance:auto}"
"</style>";
// ---- JavaScript for the WiFi configuration page (AJAX scan, password toggle, hidden network) ----
static const char TPL_WIFI_JS[] PROGMEM =
"function scan(){"
"var nl=document.getElementById('nl');"
"nl.innerHTML='<div class=\"ldw\"><span class=\"ld\"></span></div>';"
"var x=new XMLHttpRequest;"
"x.onload=function(){"
"try{var d=JSON.parse(x.responseText);var h='';"
"for(var i=0;i<d.n.length;i++){var n=d.n[i];"
"var sl=n.r<26?'s1':n.r<51?'s2':n.r<76?'s3':'s4';"
"h+='<div class=\"n\" onclick=\"sel(this)\"><span>'+esc(n.s)+'</span>'"
"+'<span class=\"q\"><span class=\"sig '+sl+'\"><i></i><i></i><i></i><i></i></span>'"
"+(n.e?'<span class=\"lk\"></span>':'')+'</span></div>';}"
"nl.innerHTML=h||'<div class=\"msg\">'+T.nn+'</div>';"
"}catch(e){nl.innerHTML='<div class=\"msg\">'+T.nn+'</div>';}};"
"x.onerror=function(){nl.innerHTML='<div class=\"msg\">'+T.nn+'</div>';};"
"x.open('GET','/scan');x.send();}"
"function esc(s){var d=document.createElement('div');"
"d.appendChild(document.createTextNode(s));return d.innerHTML;}"
"function sel(el){"
"var s=el.querySelector('span').textContent;"
"document.getElementById('s').value=s;"
"document.getElementById('hn').checked=false;"
"document.getElementById('p').focus();}"
"function togglePw(){"
"var p=document.getElementById('p');"
"p.type=p.type==='password'?'text':'password';}"
"function toggleHn(){"
"var c=document.getElementById('hn').checked;"
"var s=document.getElementById('s');"
"if(c){s.value='';s.focus();}}"
"window.addEventListener('load',scan);";
// ---- WiFiConnectParam implementation ----
WiFiConnectParam::WiFiConnectParam(const char *custom) {
_id = NULL;
_placeholder = NULL;
_length = 0;
_value = NULL;
_customHTML = custom;
}
WiFiConnectParam::WiFiConnectParam(const char *id, const char *placeholder, const char *defaultValue, int length) {
init(id, placeholder, defaultValue, length, "");
}
void WiFiConnectParam::init(const char *id, const char *placeholder, const char *defaultValue, int length, const char *custom) {
_id = id;
_placeholder = placeholder;
_length = length;
_value = NULL;
_customHTML = custom;
setValue(defaultValue);
}
void WiFiConnectParam::setValue(const char *newValue) {
if (_length > 0) {
delete[] _value;
_value = new char[_length + 1];
memset(_value, 0, _length + 1);
if (newValue != NULL) strncpy(_value, newValue, _length);
}
}
const char* WiFiConnectParam::getValue() {
return _value;
}
const char* WiFiConnectParam::getID() {
return _id;
}
const char* WiFiConnectParam::getPlaceholder() {
return _placeholder;
}
int WiFiConnectParam::getValueLength() {
return _length;
}
const char* WiFiConnectParam::getCustomHTML() {
return _customHTML;
}
// ---- WiFiConnect implementation ----
WiFiConnect::WiFiConnect() {
_apName[0] = '\0';
}
void WiFiConnect::setAPName() {
String ssid = "TEF_" + String((uint32_t)ESP.getEfuseMac());
strcpy(_apName, ssid.c_str());
}
void WiFiConnect::addParameter(WiFiConnectParam *p) {
if (_paramsCount < WiFiConnect_MAX_PARAMS) {
_params[_paramsCount] = p;
_paramsCount++;
}
}
boolean WiFiConnect::autoConnect() {
return autoConnect(NULL, NULL, WIFI_STA);
}
boolean WiFiConnect::autoConnect(char const *ssidName, char const *ssidPassword, WiFiMode_t acWiFiMode) {
WiFi.mode(acWiFiMode);
if (WiFi.status() == WL_CONNECTED) {
return true;
}
int c = 0;
while (c < RETRY_ATTEMPTS) {
long ms = millis();
if (ssidName == NULL || strlen(ssidName) == 0) {
wifi_config_t conf;
esp_wifi_get_config(WIFI_IF_STA, &conf);
String stored_ssid = String(reinterpret_cast<const char*>(conf.sta.ssid));
if (stored_ssid == "") {
return false;
}
WiFi.begin();
} else {
WiFi.begin(ssidName, ssidPassword);
}
while (millis() - (unsigned long)ms < ((unsigned int)CONNECTION_TIMEOUT_SECS * 1000)) {
int ws = WiFi.status();
if (ws == WL_CONNECTED) {
delay(500);
return true;
} else if (ws == WL_CONNECT_FAILED) {
delay(500);
} else {
delay(200);
yield();
}
}
c++;
}
return false;
}
boolean WiFiConnect::startConfigurationPortal(int8_t cancelPin) {
delay(50);
if (WiFi.status() != WL_CONNECTED) {
WiFi.mode(WIFI_AP);
} else {
WiFi.mode(WIFI_AP_STA);
}
dnsServer.reset(new DNSServer());
server.reset(new WebServer(80));
setAPName();
WiFi.softAP(_apName);
delay(500);
/* Setup the DNS server redirecting all domains to the AP IP */
dnsServer->setErrorReplyCode(DNSReplyCode::NoError);
dnsServer->start(53, "*", WiFi.softAPIP());
/* Setup web pages: root, wifi config, scan API, logo, and not found */
server->on("/", std::bind(&WiFiConnect::handleRoot, this));
server->on("/wifi", std::bind(&WiFiConnect::handleWifi, this));
server->on("/scan", std::bind(&WiFiConnect::handleScan, this));
server->on("/wifisave", std::bind(&WiFiConnect::handleWifiSave, this));
server->on("/logo.png", std::bind(&WiFiConnect::handleLogo, this));
/* Captive portal detection endpoints — redirect to root to trigger popup */
server->on("/fwlink", std::bind(&WiFiConnect::handleRoot, this)); // Windows
server->on("/redirect", std::bind(&WiFiConnect::handleRoot, this)); // Windows 10+
server->on("/hotspot-detect.html", std::bind(&WiFiConnect::handleRoot, this)); // Apple iOS/macOS
server->on("/library/test/success.html", std::bind(&WiFiConnect::handleRoot, this)); // Apple legacy
server->on("/generate_204", std::bind(&WiFiConnect::handleRoot, this)); // Android
server->on("/gen_204", std::bind(&WiFiConnect::handleRoot, this)); // Android alt
server->on("/connecttest.txt", std::bind(&WiFiConnect::handleRoot, this)); // Windows 11
server->on("/ncsi.txt", std::bind(&WiFiConnect::handleRoot, this)); // Windows NCSI
server->onNotFound(std::bind(&WiFiConnect::handleNotFound, this));
server->begin();
if (cancelPin >= 0) {
while (digitalRead(cancelPin) == LOW) delay(10);
delay(200);
}
_readyToConnect = false;
while (true) {
dnsServer->processNextRequest();
server->handleClient();
if (_readyToConnect) {
_readyToConnect = false;
if (autoConnect(_ssid.c_str(), _password.c_str(), WIFI_AP_STA)) {
WiFi.mode(WIFI_STA);
delay(500);
break;
}
}
if (cancelPin >= 0 && digitalRead(cancelPin) == LOW) {
delay(50); // debounce
if (digitalRead(cancelPin) == LOW) break;
}
yield();
}
server->close();
server.reset();
dnsServer.reset();
return (WiFi.status() == WL_CONNECTED);
}
// ---- Page handlers ----
void WiFiConnect::handleRoot() {
if (captivePortal()) return;
String page = F("<!DOCTYPE html><html lang='en'><head>"
"<meta charset='utf-8'>"
"<meta name='viewport' content='width=device-width,initial-scale=1,user-scalable=no'>"
"<title>");
page += textUI(311);
page += F("</title>");
page += FPSTR(TPL_STYLE);
page += F("</head><body><div class='w'>"
"<img class='logo' src='/logo.png' alt='FMDX'><h1>");
page += _apName;
page += F("</h1><div class='msg'>");
page += textUI(297);
page += F("</div><form action='/wifi' method='get'><button>");
page += textUI(298);
page += F("</button></form></div></body></html>");
server->sendHeader("Content-Length", String(page.length()));
server->send(200, "text/html", page);
}
void WiFiConnect::handleWifi() {
String page = F("<!DOCTYPE html><html lang='en'><head>"
"<meta charset='utf-8'>"
"<meta name='viewport' content='width=device-width,initial-scale=1,user-scalable=no'>"
"<title>");
page += textUI(312);
page += F("</title>");
page += FPSTR(TPL_STYLE);
page += F("</head><body><div class='w'>"
"<img class='logo' src='/logo.png' alt='FMDX'><h1>");
page += _apName;
page += F("</h1>");
// ---- Networks card ----
page += F("<div class='cd'><h2>");
page += textUI(298);
page += F("</h2><div id='nl'><div class='ldw'><span class='ld'></span></div></div>"
"<button class='alt' onclick='scan()'>");
page += textUI(305);
page += F("</button></div>");
// ---- Connection form card ----
page += F("<div class='cd'><h2>");
page += textUI(304);
page += F("</h2><form method='post' action='wifisave'>");
// Hidden network toggle
page += F("<label class='hn'><input type='checkbox' id='hn' onchange='toggleHn()'> ");
page += textUI(299);
page += F("</label>");
// SSID field
page += F("<label>");
page += textUI(300);
page += F("</label><input type='text' id='s' name='s' maxlength='32' placeholder='");
page += textUI(301);
page += F("'>");
// Password field with SVG eye toggle
page += F("<label>");
page += textUI(302);
page += F("</label><div class='pw'><input type='password' id='p' name='p' maxlength='64' placeholder='");
page += textUI(303);
page += F("'><button type='button' onclick='togglePw()'>"
"<svg viewBox='0 0 24 24'><path d='M1 12s4-8 11-8 11 8 11 8-4 8-11 8-11-8-11-8z'/>"
"<circle cx='12' cy='12' r='3'/></svg></button></div>");
// Custom parameters
for (int i = 0; i < _paramsCount; i++) {
if (_params[i] == NULL) break;
if (_params[i]->getID() != NULL) {
char parLength[4];
snprintf(parLength, 4, "%d", _params[i]->getValueLength());
page += F("<input type='text' id='");
page += _params[i]->getID();
page += F("' name='");
page += _params[i]->getID();
page += F("' maxlength=");
page += parLength;
page += F(" placeholder='");
page += _params[i]->getPlaceholder();
page += F("' value='");
page += _params[i]->getValue();
page += F("' ");
page += _params[i]->getCustomHTML();
page += F(">");
} else {
page += F("<p class='pt'>");
page += _params[i]->getCustomHTML();
page += F("</p>");
}
}
// Submit button
page += F("<button type='submit'>");
page += textUI(304);
page += F("</button></form></div>");
// JavaScript: inject translated text, then functions
String nnText = textUI(313);
nnText.replace("'", "\\'");
page += F("<script>var T={nn:'");
page += nnText;
page += F("'};");
page += FPSTR(TPL_WIFI_JS);
page += F("</script></div></body></html>");
server->sendHeader("Content-Length", String(page.length()));
server->send(200, "text/html", page);
}
void WiFiConnect::handleScan() {
int n = WiFi.scanNetworks();
String json = F("{\"n\":[");
if (n > 0) {
// Sort by RSSI
int indices[n];
for (int i = 0; i < n; i++) indices[i] = i;
for (int i = 0; i < n; i++) {
for (int j = i + 1; j < n; j++) {
if (WiFi.RSSI(indices[j]) > WiFi.RSSI(indices[i])) {
std::swap(indices[i], indices[j]);
}
}
}
// Remove duplicates (must be RSSI sorted)
for (int i = 0; i < n; i++) {
if (indices[i] == -1) continue;
String cssid = WiFi.SSID(indices[i]);
for (int j = i + 1; j < n; j++) {
if (cssid == WiFi.SSID(indices[j])) indices[j] = -1;
}
}
bool first = true;
for (int i = 0; i < n; i++) {
if (indices[i] == -1) continue;
int quality = getRSSIasQuality(WiFi.RSSI(indices[i]));
if (quality < MINIMUM_QUALITY) continue;
if (!first) json += ',';
first = false;
// Escape SSID for JSON
String ssid = WiFi.SSID(indices[i]);
ssid.replace("\\", "\\\\");
ssid.replace("\"", "\\\"");
json += F("{\"s\":\"");
json += ssid;
json += F("\",\"r\":");
json += String(quality);
json += F(",\"e\":");
json += (WiFi.encryptionType(indices[i]) != WIFI_AUTH_OPEN) ? '1' : '0';
json += '}';
}
}
json += F("]}");
server->send(200, "application/json", json);
}
void WiFiConnect::handleWifiSave() {
_ssid = server->arg("s").c_str();
_ssid.trim();
_password = server->arg("p").c_str();
_password.trim();
// Read custom parameters from form
for (int i = 0; i < _paramsCount; i++) {
if (_params[i] == NULL || _params[i]->getID() == NULL) continue;
String value = server->arg(_params[i]->getID()).c_str();
value.toCharArray(_params[i]->_value, _params[i]->_length);
}
String page = F("<!DOCTYPE html><html lang='en'><head>"
"<meta charset='utf-8'>"
"<meta name='viewport' content='width=device-width,initial-scale=1,user-scalable=no'>"
"<title>");
page += textUI(314);
page += F("</title>");
page += FPSTR(TPL_STYLE);
page += F("</head><body><div class='w'>"
"<img class='logo' src='/logo.png' alt='FMDX'><h1>");
page += _apName;
page += F("</h1><div class='cd'>");
// Connecting spinner
page += F("<div id='sp' style='text-align:center;padding:20px 0'>"
"<div class='ld'></div>"
"<p style='margin-top:14px;color:#ddd'>");
page += textUI(306);
page += F(" <strong style='color:#5bd6ab'>");
page += _ssid;
page += F("</strong> ...</p></div>");
// Polling script: polls /foo every 3s; if AP responds → fail, if 20 timeouts → success
page += F("<script>"
"var a=0,t=setInterval(function(){"
"if(a>20){clearInterval(t);document.getElementById('sp').style.display='none';"
"document.getElementById('ok').style.display='block';return}"
"var x=new XMLHttpRequest;"
"x.onload=function(){clearInterval(t);document.getElementById('sp').style.display='none';"
"document.getElementById('fl').style.display='block'};"
"x.ontimeout=function(){};"
"x.open('GET','/foo');x.timeout=1e3;x.send(null);a++},3e3);"
"</script>");
// Success message
page += F("<div class='ok' id='ok'>");
page += textUI(307);
page += F(" <strong>");
page += _ssid;
page += F("</strong>!<br>");
page += textUI(308);
page += F("</div>");
// Failure message
page += F("<div class='fail' id='fl'>");
page += textUI(309);
page += F(" <strong>");
page += _ssid;
page += F("</strong>.<br><a href='/'>");
page += textUI(310);
page += F("</a></div>");
page += F("</div></div></body></html>");
server->sendHeader("Content-Length", String(page.length()));
server->send(200, "text/html", page);
_readyToConnect = true;
}
void WiFiConnect::handleLogo() {
fs::File file = SPIFFS.open("/logo.png", "r");
if (!file) {
server->send(404, "text/plain", "Logo not found");
return;
}
server->streamFile(file, "image/png");
file.close();
}
void WiFiConnect::handleNotFound() {
if (captivePortal()) {
return;
}
String message = "File Not Found\n\n";
message += "URI: ";
message += server->uri();
message += "\nMethod: ";
message += (server->method() == HTTP_GET) ? "GET" : "POST";
message += "\nArguments: ";
message += server->args();
message += "\n";
for (uint8_t i = 0; i < server->args(); i++) {
message += " " + server->argName(i) + ": " + server->arg(i) + "\n";
}
server->sendHeader("Cache-Control", "no-cache, no-store, must-revalidate");
server->sendHeader("Pragma", "no-cache");
server->sendHeader("Expires", "-1");
server->sendHeader("Content-Length", String(message.length()));
server->send(404, "text/plain", message);
}
boolean WiFiConnect::captivePortal() {
if (!isIp(server->hostHeader())) {
String msg = "redirect\n";
server->sendHeader("Location", String("http://") + toStringIp(server->client().localIP()), true);
server->sendHeader("Content-Length", String(msg.length()));
server->send(302, "text/plain", msg);
return true;
}
return false;
}
boolean WiFiConnect::isIp(String str) {
for (unsigned int i = 0; i < str.length(); i++) {
int c = str.charAt(i);
if (c != '.' && (c < '0' || c > '9')) {
return false;
}
}
return true;
}
String WiFiConnect::toStringIp(IPAddress ip) {
String res = "";
for (int i = 0; i < 3; i++) {
res += String((ip >> (8 * i)) & 0xFF) + ".";
}
res += String(((ip >> 8 * 3)) & 0xFF);
return res;
}
int WiFiConnect::getRSSIasQuality(int RSSI) {
int quality = 0;
if (RSSI <= -100) {
quality = 0;
} else if (RSSI >= -50) {
quality = 100;
} else {
quality = 2 * (RSSI + 100);
}
return quality;
}
+81
View File
@@ -0,0 +1,81 @@
#pragma once
#include <Arduino.h>
#include <WiFi.h>
#include <WebServer.h>
#include <DNSServer.h>
#include <esp_wifi.h>
#include <memory>
#include "core.h"
#define WiFiConnect_MAX_PARAMS 10
extern const char* textUI(uint16_t number);
class WiFiConnect;
class WiFiConnectParam {
public:
WiFiConnectParam(const char *custom);
WiFiConnectParam(const char *id, const char *placeholder, const char *defaultValue, int length);
const char *getID();
const char *getValue();
const char *getPlaceholder();
int getValueLength();
const char *getCustomHTML();
private:
const char *_id;
const char *_placeholder;
char *_value;
int _length;
const char *_customHTML;
void init(const char *id, const char *placeholder, const char *defaultValue, int length, const char *custom);
void setValue(const char *newValue);
friend class WiFiConnect;
};
class WiFiConnect {
public:
WiFiConnect();
boolean autoConnect();
void addParameter(WiFiConnectParam *p);
boolean startConfigurationPortal(int8_t cancelPin);
private:
static constexpr int RETRY_ATTEMPTS = 3;
static constexpr int CONNECTION_TIMEOUT_SECS = 10;
static constexpr int MINIMUM_QUALITY = 8;
int _paramsCount = 0;
boolean _readyToConnect = false;
String _ssid;
String _password;
WiFiConnectParam* _params[WiFiConnect_MAX_PARAMS];
std::unique_ptr<DNSServer> dnsServer;
std::unique_ptr<WebServer> server;
char _apName[33];
void setAPName();
boolean autoConnect(const char *ssidName, const char *ssidPassword, WiFiMode_t acWiFiMode);
void handleRoot();
void handleWifi();
void handleScan();
void handleWifiSave();
void handleLogo();
void handleNotFound();
boolean captivePortal();
boolean isIp(String str);
String toStringIp(IPAddress ip);
int getRSSIasQuality(int RSSI);
};
+306 -54
View File
@@ -1,5 +1,7 @@
#include "comms.h"
#include <EEPROM.h>
#include "graphics.h"
#include <ESPmDNS.h>
extern mem presets[];
@@ -359,6 +361,11 @@ void Communication() {
}
}
} else if (data_str.startsWith("l") || data_str.startsWith("L")) printLogbookCSV();
else if(data_str.charAt(0) == '~' && data_str.charAt(1) == '/') {
MuteScreen(true);
i2c_pc_control = i2c_pc_control_init = true;
Serial.flush();
}
}
if (RDSSPYUSB && Serial.available()) {
@@ -411,7 +418,7 @@ void XDRGTKRoutine() {
}
}
if (XDRGTKdata) {
if(XDRGTKdata) {
switch (buff[0])
{
case 'A': {
@@ -423,8 +430,8 @@ void XDRGTKRoutine() {
radio.setAGC(92);
fmagc = 92;
} else {
radio.setAMAGC(102);
amagc = 102;
radio.setAMAGC(100);
amagc = 100;
}
break;
case 1:
@@ -508,35 +515,18 @@ void XDRGTKRoutine() {
} case 'F': {
XDRBWset = atoi(buff + 1);
DataPrint("F" + String(XDRBWset) + "\n");
if (XDRBWset < 0) {
BWset = 0;
} else if (XDRBWset < 16) {
BWset = XDRBWset + 1;
}
if (XDRBWset < 0) BWset = 0;
else if (XDRBWset < 16) BWset = XDRBWset + 1;
doBW();
break;
} case 'G': {
byte offsetg = atoi(buff + 1);
if (offsetg == 0) {
iMSset = 1;
EQset = 1;
DataPrint("G00\n");
}
if (offsetg == 10) {
iMSset = 1;
EQset = 0;
DataPrint("G10\n");
}
if (offsetg == 1) {
iMSset = 0;
EQset = 1;
DataPrint("G01\n");
}
if (offsetg == 11) {
iMSset = 0;
EQset = 0;
DataPrint("G11\n");
}
uint8_t offsetg = strtoul(buff + 1, NULL, 2);
iMSset = (offsetg & 2) == 2;
EQset = (offsetg & 1) == 1;
if (offsetg == 0) DataPrint("G00\n");
else if (offsetg == 2) DataPrint("G10\n");
else if (offsetg == 1) DataPrint("G01\n");
else if (offsetg == 3) DataPrint("G11\n");
updateiMS();
updateEQ();
break;
@@ -747,7 +737,7 @@ void XDRGTKRoutine() {
doBW();
break;
case 'w': {
unsigned int bwtemp = atoi(buff + 2);
uint32_t bwtemp = atoi(buff + 2);
switch (bwtemp) {
case 0: BWset = 0; break;
case 56000: BWset = 1; break;
@@ -770,7 +760,6 @@ void XDRGTKRoutine() {
doBW();
break;
}
case '\0':
radio.setMute();
if (!screenmute) tft.drawBitmap(249, 4, Speaker, 28, 24, PrimaryColor);
@@ -787,7 +776,7 @@ void XDRGTKRoutine() {
delay(5);
DataPrint(String(freq_scan * 10, DEC));
DataPrint(" = ");
if (band < BAND_GAP) radio.getStatus(&SStatus, &USN, &WAM, &OStatus, &BW, &MStatus, &CN); else radio.getStatusAM(&SStatus, &USN, &WAM, &OStatus, &BW, &MStatus, &CN);
if (band < BAND_GAP) radio.getStatus(&SStatus, &USN, &WAM, &OStatus, &BW, &MStatus); else radio.getStatusAM(&SStatus, &USN, &WAM, &OStatus, &BW, &MStatus);
DataPrint(String((SStatus / 10) + 10, DEC));
DataPrint(", ");
}
@@ -808,7 +797,7 @@ void XDRGTKRoutine() {
}
break;
} case 'W': {
unsigned int bwtemp = atoi(buff + 1);
uint32_t bwtemp = atoi(buff + 1);
switch (bwtemp) {
case 0: BWset = 0; break;
case 56000: BWset = 1; break;
@@ -851,8 +840,8 @@ void XDRGTKRoutine() {
if (BAND_FM) DataPrint("T" + String((frequency + ConverterSet * 100) * 10) + "\n");
else if (BAND_OIRT) DataPrint("T" + String(frequency_OIRT * 10) + "\n");
else DataPrint("T" + String(frequency_AM) + "\n");
if (StereoToggle) DataPrint("B0\n"); else DataPrint("B1\n");
if (XDRGTKMuteScreen) MuteScreen(1);
if(StereoToggle) DataPrint("B0\n"); else DataPrint("B1\n");
if(XDRGTKMuteScreen) MuteScreen(1);
break;
} case 'X': {
XDRGTKTCP = false;
@@ -889,7 +878,7 @@ void XDRGTKRoutine() {
void passwordcrypt() {
int generated = 0;
while (generated < 16) {
while(generated < 16) {
byte randomValue = random(0, 26);
char letter = randomValue + 'a';
if (randomValue > 26) letter = (randomValue - 26);
@@ -900,37 +889,300 @@ void passwordcrypt() {
cryptedpassword = String(sha1(salt));
}
void tryWiFi() {
if (!setupmode && wifi) {
tft.drawRoundRect(1, 20, 319, 180, 5, ActiveColor);
tft.fillRoundRect(3, 22, 315, 176, 5, BackgroundColor);
Infoboxprint(textUI(52));
}
if (wifi) {
if (wc.autoConnect()) {
static uint8_t _wifiConnState = 0; // 0=idle, 1=connecting
static unsigned long _wifiConnMs = 0;
static uint8_t _wifiConnRetry = 0;
static bool _wifiServicesUp = false;
static bool _wifiHandlersSet = false;
static constexpr uint8_t WIFI_MAX_RETRIES = 3;
static constexpr unsigned long WIFI_TIMEOUT_MS = 10000; // 10s per attempt
static constexpr unsigned long WIFI_RECONNECT_MS = 30000; // 30s between reconnect cycles
static void wifiStartServices() {
Server.begin();
Udp.begin(9031);
if (!_wifiHandlersSet) {
webserver.on("/", handleRoot);
webserver.on("/downloadCSV", HTTP_GET, handleDownloadCSV);
webserver.on("/logo.png", handleLogo);
_wifiHandlersSet = true;
}
webserver.begin();
MDNS.begin("tef");
NTPupdate();
remoteip = IPAddress(WiFi.localIP()[0], WiFi.localIP()[1], WiFi.localIP()[2], subnetclient);
if (!setupmode) tftPrint(ACENTER, textUI(54), 155, 128, InsignificantColor, InsignificantColorSmooth, 28);
} else {
if (!setupmode) tftPrint(ACENTER, textUI(53), 155, 128, SignificantColor, SignificantColorSmooth, 28);
_wifiServicesUp = true;
if (menu && menupage == CONNECTIVITY) BuildMenu();
}
static void wifiStopServices() {
_wifiServicesUp = false;
MDNS.end();
Server.end();
webserver.stop();
Udp.stop();
}
void tryWiFi() {
if (!wifi) {
_wifiConnState = 0;
if (_wifiServicesUp) wifiStopServices();
WiFi.mode(WIFI_OFF);
wifi = false;
XDRGTKTCP = false;
RDSSPYTCP = false;
return;
}
if (WiFi.status() == WL_CONNECTED) {
_wifiConnState = 0;
if (!_wifiServicesUp) wifiStartServices();
return;
}
WiFi.mode(WIFI_STA);
WiFi.begin();
_wifiConnState = 1;
_wifiConnMs = millis();
_wifiConnRetry = 0;
_wifiServicesUp = false;
}
void wifiPoll() {
if (!wifi) return;
if (_wifiConnState == 1) {
if (WiFi.status() == WL_CONNECTED) {
_wifiConnState = 0;
wifiStartServices();
return;
}
if (millis() - _wifiConnMs >= WIFI_TIMEOUT_MS) {
_wifiConnRetry++;
if (_wifiConnRetry < WIFI_MAX_RETRIES) {
WiFi.begin();
_wifiConnMs = millis();
} else {
Server.end();
webserver.stop();
Udp.stop();
WiFi.mode(WIFI_OFF);
_wifiConnState = 0;
_wifiConnMs = millis();
}
}
return;
}
if (WiFi.status() == WL_CONNECTED) {
if (!_wifiServicesUp) wifiStartServices();
return;
}
if (_wifiServicesUp) wifiStopServices();
if (millis() - _wifiConnMs >= WIFI_RECONNECT_MS) {
WiFi.mode(WIFI_STA);
WiFi.begin();
_wifiConnState = 1;
_wifiConnMs = millis();
_wifiConnRetry = 0;
}
}
uint8_t crc8_update(uint8_t crc, uint8_t data) {
crc ^= data;
for (uint8_t i = 0; i < 8; i++) {
if (crc & 0x80) crc = (crc << 1) ^ 0x07;
else crc <<= 1;
}
return crc;
}
uint8_t crc8(const uint8_t *data, size_t len) {
uint8_t crc = 0x00;
while (len--) crc = crc8_update(crc, *data++);
return crc;
}
bool execute_pc_command(uint8_t *data, uint8_t *&p, uint8_t *output, uint16_t len, uint32_t* baud_change, size_t output_size) {
switch (data[0]) {
case 0: { // Set clock
if(len < 5) {
*p++ = 2;
return true;
}
uint32_t clock = ((uint32_t)data[1] << 24) | ((uint32_t)data[2] << 16) | ((uint32_t)data[3] << 8) | ((uint32_t)data[4]);
Wire.setClock(clock);
} break;
case 1: { // Send data
if(len < 3) {
*p++ = 2;
return true;
}
Wire.beginTransmission(data[1]);
Wire.write(data + 2, len - 2);
auto out = Wire.endTransmission();
*p++ = out;
} break;
case 2: { // Send and receive data
if(len < 4) {
*p++ = 2;
return true;
}
uint8_t addr = data[1];
uint8_t datalen = data[2];
if(len < 3 + datalen + 1) {
*p++ = 2;
return true;
}
Wire.beginTransmission(addr);
Wire.write(data + 3, datalen);
auto out = Wire.endTransmission(false);
uint8_t recvlen = Wire.requestFrom(addr, data[3+datalen]);
if ((p - output) + recvlen >= output_size) {
*p++ = 2;
return true;
}
*p++ = out;
while(Wire.available()) *p++ = Wire.read();
} break;
case 3: { // Quit
i2c_pc_control = false;
MuteScreen(false);
*baud_change = 115200;
} break;
case 4: { // Version
*p++ = 3;
} break;
case 5: { // Reboot
Serial.write(0);
Serial.write(1);
Serial.write(5);
Serial.flush();
esp_restart();
} break;
case 6: { // Change baud
if(len < 5) {
*p++ = 2;
return true;
}
*baud_change = ((uint32_t)data[1] << 24) | ((uint32_t)data[2] << 16) |
((uint32_t)data[3] << 8) | ((uint32_t)data[4]);
} break;
case 7: { // Write to EEPROM
if(len < 4) {
*p++ = 2;
return true;
}
EEPROM.writeBytes((data[1] << 8) | data[2], data + 3, len - 3);
EEPROM.commit();
} break;
case 8: { // Read from EEPROM
if(len < 4) {
*p++ = 2;
return true;
}
auto address = (data[1] << 8) | data[2];
*p++ = data[3] + 1;
*p++ = 8;
for(uint16_t i = 0; i < data[3]; i++) *p++ = EEPROM.read(address + i);
} break;
case 0xfd: { // Get EEPROM address for userdata
*p++ = (uint8_t)(EE_START_CONTROLMODE_DATA >> 8);
*p++ = EE_START_CONTROLMODE_DATA & 0xff;
*p++ = (uint8_t)(EE_LEN_CONTROLMODE_DATA >> 8);
*p++ = EE_LEN_CONTROLMODE_DATA & 0xff;
} break;
case 0xfe: { // Get EEPROM address for starting control mode on boot
*p++ = (uint8_t)(EE_BYTE_CONTROLMODE >> 8);
*p++ = EE_BYTE_CONTROLMODE & 0xff;
} break;
case 0xff:
break;
default:
*p++ = 3;
return true;
}
return false;
}
void total_pc_control() {
static uint8_t data[4096];
static uint8_t output[4096];
uint8_t *p = output + 3;
uint32_t baud_change = 0;
bool error = false;
bool done = false;
bool send_crc = false;
if(Serial.available() > 2 && !done) {
uint16_t userlen = (Serial.read() << 8) | Serial.read();
if (userlen == 0) {
Serial.flush();
return;
}
if(userlen == 0x7e2f) { // ~/
error = true;
done = true;
}
bool has_crc = (userlen >> 15) & 1;
send_crc = has_crc;
uint16_t orig_userlen = userlen;
userlen &= 0x7fff;
if(userlen > 4096) {
*p++ = 0;
send_crc = false;
error = true;
done = true;
}
if(!done) {
uint16_t len = Serial.read(data, userlen);
if(len != userlen) {
error = true;
send_crc = false;
*p++ = 0;
}
if(!error & has_crc && Serial.available()) {
uint8_t crc = Serial.read();
uint8_t expected_crc = crc8_update(0, orig_userlen >> 8);
expected_crc = crc8_update(expected_crc, orig_userlen & 0xff);
for (int i = 0; i < len; i++) expected_crc = crc8_update(expected_crc, data[i]);
if(crc != expected_crc) {
error = true;
send_crc = false;
*p++ = 1;
}
}
if(!error) error = execute_pc_command(data, p, output, len, &baud_change, sizeof(output));
done = true;
}
}
if(done) {
uint16_t out_len = (p - output) - 2;
output[0] = out_len >> 8;
output[1] = out_len & 0xff;
if(error) output[2] = 0xff;
else output[2] = data[0];
if(send_crc) {
output[0] |= 0x80;
uint8_t crc = crc8(output, p - output);
*p++ = crc;
}
Serial.write(output, p - output);
if(baud_change != 0) {
Serial.flush();
Serial.updateBaudRate(baud_change);
baud_change = 0;
}
Serial.flush(!error);
}
}
+2422
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+12 -10
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@@ -2,7 +2,6 @@
bool RDSstatus;
bool RDSstatusold;
TFT_eSPI tft = TFT_eSPI();
bool Data_Accelerator = false;
@@ -15,7 +14,7 @@ bool beepresetstart;
bool beepresetstop, BWreset, bwtouchtune;
bool BWtune, change, clockampm;
bool direction, dropout;
bool dynamicPTYold, edgebeep, externaltune;
bool edgebeep, externaltune;
bool findMemoryAF;
bool firstTouchHandled = false;
bool flashing;
@@ -127,7 +126,7 @@ byte scanhold;
byte scanmodeold;
byte screensaverOptions[5] = {0, 3, 10, 30, 60};
byte screensaverset;
byte showmodulation;
byte showaudio;
byte showrdserrors;
byte showSWMIBand;
byte submenu;
@@ -218,9 +217,7 @@ int8_t MPold = 0;
int8_t USold = 0;
int8_t LevelOffset;
int8_t LowLevelSet;
int8_t NTPoffset;
int8_t CN;
int8_t CNold;
int8_t Timezone;
RTC_DATA_ATTR int8_t VolSet;
float batteryVold;
IPAddress remoteip;
@@ -250,6 +247,7 @@ String XDRGTK_key;
Detector<String, 1> XDRGTKRDS{""};
uint16_t BW;
uint16_t MStatus;
bool modLevelForceRedraw = true;
uint16_t SWMIBandPos;
uint16_t SWMIBandPosold;
uint16_t TouchCalData[5];
@@ -306,8 +304,8 @@ unsigned long flashingtimer;
unsigned long keypadtimer;
unsigned long lastTouchTime = 0;
unsigned long lowsignaltimer;
unsigned long ModulationpreviousMillis;
unsigned long ModulationpeakPreviousMillis;
unsigned long AudiopreviousMillis;
unsigned long AudiopeakPreviousMillis;
unsigned long NTPtimer;
unsigned long peakholdmillis;
unsigned long processed_rdsblocksold[33];
@@ -322,11 +320,15 @@ unsigned long tuningtimer;
unsigned long udplogtimer;
unsigned long udptimer;
bool rds_settings_changed;
const size_t language_totalnumber = sizeof(myLanguage) / sizeof(myLanguage[0]);
const size_t language_entrynumber = sizeof(myLanguage[0]) / sizeof(myLanguage[0][0]);
const size_t language_totalnumber = sizeof(Languages) / sizeof(Languages[0]);
const size_t language_entrynumber = sizeof(Languages[0]) / sizeof(Languages[0][0]);
volatile bool i2c_pc_control = false;
volatile bool i2c_pc_control_init = false;
mem presets[EE_PRESETS_CNT];
TEF6686 radio;
TFT_eSPI tft = TFT_eSPI();
// FrequencySprite.createSprite(200, 50);
// PSSprite.createSprite(150, 32);
+107
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@@ -0,0 +1,107 @@
#include "graphics.h"
void tftPrint(int8_t offset, const String & text, int16_t x, int16_t y, int color, int smoothcolor, uint8_t fontsize) {
uint8_t selectedFont = (language == LANGUAGE_CHS) ? 0 : 2;
if (fontsize == 28) selectedFont = (language == LANGUAGE_CHS) ? 4 : 3;
else if (fontsize == 48) selectedFont = 1;
tft.setTextColor(color, smoothcolor);
switch (offset) {
case -1: tft.setTextDatum(TL_DATUM); break;
case 0: tft.setTextDatum(TC_DATUM); break;
case 1: tft.setTextDatum(TR_DATUM); break;
}
String modifiedText = text;
modifiedText.replace("\n", " ");
tft.drawString(modifiedText, x, y, selectedFont);
}
void tftPrint16(int8_t offset, const String & text, int16_t x, int16_t y, int color, int smoothcolor, bool force_font, bool font) {
uint8_t selectedFont = (language == LANGUAGE_CHS) ? 0 : 2;
if(force_font) selectedFont = 0 ? font : 2;
tft.setTextColor(color, smoothcolor);
switch (offset) {
case -1: tft.setTextDatum(TL_DATUM); break;
case 0: tft.setTextDatum(TC_DATUM); break;
case 1: tft.setTextDatum(TR_DATUM); break;
}
String modifiedText = text;
modifiedText.replace("\n", " ");
tft.drawString(modifiedText, x, y, selectedFont);
}
void tftReplace(int8_t offset, const String & textold, const String & text, int16_t x, int16_t y, int color, int smoothcolor, int background, uint8_t fontsize) {
uint8_t selectedFont = 0 ? (language == LANGUAGE_CHS) : 2;
if(fontsize == 28) selectedFont = (language == LANGUAGE_CHS) ? 4 : 3;
else if(fontsize == 48) selectedFont = 1;
switch (offset) {
case -1: tft.setTextDatum(TL_DATUM); break;
case 0: tft.setTextDatum(TC_DATUM); break;
case 1: tft.setTextDatum(TR_DATUM); break;
}
tft.setTextColor(background, background, false);
tft.drawString(textold, x, y, selectedFont);
String modifiedText = text;
modifiedText.replace("\n", " ");
tft.setTextColor(color, smoothcolor, false);
tft.drawString(modifiedText, x, y, selectedFont);
}
void tftReplace16(int8_t offset, const String & textold, const String & text, int16_t x, int16_t y, int color, int smoothcolor, int background, bool force_font, bool font) {
uint8_t selectedFont = (language == LANGUAGE_CHS) ? 0 : 2;
if(force_font) selectedFont = 0 ? font : 2;
switch (offset) {
case -1: tft.setTextDatum(TL_DATUM); break;
case 0: tft.setTextDatum(TC_DATUM); break;
case 1: tft.setTextDatum(TR_DATUM); break;
}
tft.setTextColor(background, background, false);
tft.drawString(textold, x, y, selectedFont);
String modifiedText = text;
modifiedText.replace("\n", " ");
tft.setTextColor(color, smoothcolor, false);
tft.drawString(modifiedText, x, y, selectedFont);
}
void UpdateFonts() {
// This is at setup:
// tft.loadFont(FONT48, 1);
// tft.loadFont(FONT16_CHS, 0);
// tft.loadFont(FONT16, 2);
// tft.loadFont(FONT28, 3);
// tft.loadFont(FONT28_CHS, 4);
if (language == LANGUAGE_CHS) {
if (menu) PSSprite.setTextFont(1); else PSSprite.setTextFont(3);
OneBigLineSprite.copyFontFromTFT(4, 0);
FullLineSprite.copyFontFromTFT(0, 0);
GeneralTextSprite.copyFontFromTFT(0, 0);
GeneralTextSprite.copyFontFromTFT(4, 1);
FrequencySprite.copyFontFromTFT(0, 6);
SquelchSprite.copyFontFromTFT(0, 0);
} else {
if (menu) PSSprite.setTextFont(0); else PSSprite.setTextFont(2);
OneBigLineSprite.copyFontFromTFT(3, 0);
FullLineSprite.copyFontFromTFT(2, 0);
GeneralTextSprite.copyFontFromTFT(2, 0);
GeneralTextSprite.copyFontFromTFT(3, 1);
FrequencySprite.copyFontFromTFT(2, 6);
SquelchSprite.copyFontFromTFT(2, 0);
}
}
+441 -583
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+10 -13
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@@ -41,9 +41,9 @@ void handleRoot() {
html += "<img src=\"/logo.png\" alt=\"FMDX website\">";
html += "</a>";
html += "<h1>" + String(textUI(283)) + "</h1>";
html += "<button onclick=\"window.location.href='/downloadCSV'\">" + String(textUI(284)) + "</button>";
html += "<button class=\"go-to-bottom\" onclick=\" window.scrollTo(0, document.body.scrollHeight);\">" + String(textUI(286)) + "</button>";
html += "<h1>" + String(textUI(282)) + "</h1>";
html += "<button onclick=\"window.location.href='/downloadCSV'\">" + String(textUI(283)) + "</button>";
html += "<button class=\"go-to-bottom\" onclick=\" window.scrollTo(0, document.body.scrollHeight);\">" + String(textUI(285)) + "</button>";
// Sorting function with icons
html += "<script>";
@@ -104,7 +104,7 @@ void handleRoot() {
String column = header.substring(startIndex, endIndex);
if (column.equalsIgnoreCase("PI")) piCodeIndex = columnIndex;
if (column.equalsIgnoreCase("Frequency")) frequencyIndex = columnIndex;
else if (column.equalsIgnoreCase("Frequency")) frequencyIndex = columnIndex;
startIndex = endIndex + 1;
columnIndex++;
@@ -143,9 +143,9 @@ void handleRoot() {
}
file.close();
} else html += "<tr><td colspan=\"100%\" style=\"text-align: center; color: red;\">" + String(textUI(296)) + "</td></tr>";
} else html += "<tr><td colspan=\"100%\" style=\"text-align: center; color: red;\">" + String(textUI(295)) + "</td></tr>";
if (!hasData) html += "<tr><td colspan=\"100%\" style=\"text-align: center; color: red;\">" + String(textUI(285)) + "</td></tr>";
if (!hasData) html += "<tr><td colspan=\"100%\" style=\"text-align: center; color: red;\">" + String(textUI(284)) + "</td></tr>";
html += "</table>";
html += "</body></html>";
@@ -170,9 +170,7 @@ void handleDownloadCSV() {
}
bool handleCreateNewLogbook() {
if (SPIFFS.exists("/logbook.csv")) {
if (!SPIFFS.remove("/logbook.csv")) return false;
}
if (SPIFFS.exists("/logbook.csv") && !SPIFFS.remove("/logbook.csv")) return false;
fs::File file = SPIFFS.open("/logbook.csv", "w");
if (!file) return false;
@@ -257,14 +255,14 @@ String getCurrentDateTime(bool inUTC) {
int utcOffsetHours = 0;
if (!inUTC) {
currentEpoch += (NTPupdated ? NTPoffset * 3600 : radio.rds.offset); // Apply GMT offset if NTPupdated, else RDS offset
currentEpoch += (NTPupdated ? Timezone * 3600 : radio.rds.offset); // Apply GMT offset if NTPupdated, else RDS offset
if (NTPupdated && autoDST) {
struct tm tempTimeInfo;
localtime_r(&currentEpoch, &tempTimeInfo);
if (isDST(mktime(&tempTimeInfo))) currentEpoch += 3600;
}
} else utcOffsetHours = (NTPupdated ? NTPoffset : radio.rds.offset / 3600);
} else utcOffsetHours = (NTPupdated ? Timezone : radio.rds.offset / 3600);
localtime_r(&currentEpoch, &timeInfo);
@@ -343,8 +341,7 @@ void printLogbookCSV() {
Serial.println("===== Start of logbook.csv =====");
while (file.available()) {
String line = file.readStringUntil('\n');
Serial.println(line);
Serial.println(file.readStringUntil('\n'));
}
file.close();
+758 -3320
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+14 -9
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@@ -1,4 +1,6 @@
#include "nonvolatile.h"
#include "globals.h"
#include "logbook.h"
void StoreFrequency() {
switch (band) {
@@ -67,7 +69,7 @@ void saveData() {
EEPROM.writeByte(EE_BYTE_RDS_FILTER, radio.rds.filter);
EEPROM.writeByte(EE_BYTE_RDS_PIERRORS, radio.rds.pierrors);
EEPROM.writeByte(EE_BYTE_USESQUELCH, usesquelch);
EEPROM.writeByte(EE_BYTE_SHOWMODULATION, showmodulation);
EEPROM.writeByte(EE_BYTE_SHOWAUDIO, showaudio);
EEPROM.writeByte(EE_BYTE_AM_NB, amnb);
EEPROM.writeByte(EE_BYTE_FM_NB, fmnb);
EEPROM.writeByte(EE_BYTE_AUDIOMODE, audiomode);
@@ -118,11 +120,12 @@ void saveData() {
EEPROM.writeByte(EE_BYTE_MEMPIONLY, mempionly);
EEPROM.writeByte(EE_BYTE_MEMDOUBLEPI, memdoublepi);
EEPROM.writeByte(EE_BYTE_WAITONLYONSIGNAL, scanholdonsignal);
EEPROM.writeByte(EE_BYTE_NTPOFFSET, NTPoffset);
EEPROM.writeByte(EE_BYTE_TIMEZONE, Timezone);
EEPROM.writeByte(EE_BYTE_AUTOLOG, autolog);
EEPROM.writeByte(EE_BYTE_AUTODST, autoDST);
EEPROM.writeByte(EE_BYTE_CLOCKAMPM, clockampm);
EEPROM.writeUInt(EE_UINT16_PICTLOCK, radio.rds.PICTlock);
EEPROM.writeByte(EE_BYTE_CONTROLMODE, 0); // Always 0
EEPROM.commit();
}
@@ -172,7 +175,7 @@ void loadData() {
frequency_SW = EEPROM.readUInt(EE_UINT16_FREQUENCY_SW);
XDRGTK_key = EEPROM.readString(EE_STRING_XDRGTK_KEY);
usesquelch = EEPROM.readByte(EE_BYTE_USESQUELCH);
showmodulation = EEPROM.readByte(EE_BYTE_SHOWMODULATION);
showaudio = EEPROM.readByte(EE_BYTE_SHOWAUDIO);
amnb = EEPROM.readByte(EE_BYTE_AM_NB);
fmnb = EEPROM.readByte(EE_BYTE_FM_NB);
audiomode = EEPROM.readByte(EE_BYTE_AUDIOMODE);
@@ -231,12 +234,13 @@ void loadData() {
TouchCalData[3] = EEPROM.readUInt(EE_UINT16_CALTOUCH4);
TouchCalData[4] = EEPROM.readUInt(EE_UINT16_CALTOUCH5);
invertdisplay = EEPROM.readByte(EE_BYTE_INVERTDISPLAY);
NTPoffset = EEPROM.readByte(EE_BYTE_NTPOFFSET);
Timezone = EEPROM.readByte(EE_BYTE_TIMEZONE);
autolog = EEPROM.readByte(EE_BYTE_AUTOLOG);
autoDST = EEPROM.readByte(EE_BYTE_AUTODST);
clockampm = EEPROM.readByte(EE_BYTE_CLOCKAMPM);
logcounter = EEPROM.readUInt(EE_UINT16_LOGCOUNTER);
radio.rds.PICTlock = EEPROM.readUInt(EE_UINT16_PICTLOCK);
i2c_pc_control = i2c_pc_control_init = EEPROM.readByte(EE_BYTE_CONTROLMODE);
}
void DefaultSettings() {
@@ -247,7 +251,7 @@ void DefaultSettings() {
EEPROM.writeUInt(EE_UINT16_CONVERTERSET, 0);
EEPROM.writeUInt(EE_UINT16_FMLOWEDGESET, 875);
EEPROM.writeUInt(EE_UINT16_FMHIGHEDGESET, 1080);
EEPROM.writeByte(EE_BYTE_CONTRASTSET, 20);
EEPROM.writeByte(EE_BYTE_CONTRASTSET, 10);
EEPROM.writeByte(EE_BYTE_STEREOLEVEL, 0);
EEPROM.writeByte(EE_BYTE_BANDFM, FM_BAND_ALL);
EEPROM.writeByte(EE_BYTE_BANDAM, AM_BAND_ALL);
@@ -257,7 +261,7 @@ void DefaultSettings() {
EEPROM.writeByte(EE_BYTE_RTBUFFER, 0);
EEPROM.writeByte(EE_BYTE_EDGEBEEP, 0);
EEPROM.writeByte(EE_BYTE_SOFTMUTEAM, 1);
EEPROM.writeByte(EE_BYTE_SOFTMUTEFM, 0);
EEPROM.writeByte(EE_BYTE_SOFTMUTEFM, 1);
EEPROM.writeUInt(EE_UINT16_FREQUENCY_AM, 828);
EEPROM.writeByte(EE_BYTE_LANGUAGE, 0);
EEPROM.writeByte(EE_BYTE_SHOWRDSERRORS, 0);
@@ -282,7 +286,7 @@ void DefaultSettings() {
EEPROM.writeUInt(EE_UINT16_FREQUENCY_SW, 1800);
EEPROM.writeString(EE_STRING_XDRGTK_KEY, "password");
EEPROM.writeByte(EE_BYTE_USESQUELCH, 1);
EEPROM.writeByte(EE_BYTE_SHOWMODULATION, 1);
EEPROM.writeByte(EE_BYTE_SHOWAUDIO, 1);
EEPROM.writeByte(EE_BYTE_AM_NB, 0);
EEPROM.writeByte(EE_BYTE_FM_NB, 0);
EEPROM.writeByte(EE_BYTE_AUDIOMODE, 0);
@@ -338,13 +342,14 @@ void DefaultSettings() {
EEPROM.writeUInt(EE_UINT16_CALTOUCH3, 300);
EEPROM.writeUInt(EE_UINT16_CALTOUCH4, 3450);
EEPROM.writeUInt(EE_UINT16_CALTOUCH5, 3);
EEPROM.writeByte(EE_BYTE_NTPOFFSET, 1);
EEPROM.writeByte(EE_BYTE_TIMEZONE, 0);
EEPROM.writeByte(EE_BYTE_AUTOLOG, 1);
EEPROM.writeByte(EE_BYTE_AUTODST, 1);
EEPROM.writeByte(EE_BYTE_CLOCKAMPM, 0);
EEPROM.writeUInt(EE_UINT16_PICTLOCK, 0);
EEPROM.writeByte(EE_BYTE_CONTROLMODE, 0);
EEPROM.writeByte(EE_BYTE_SPISPEED, 7);
EEPROM.writeByte(EE_BYTE_SPISPEED, 0);
#ifdef DEEPELEC_DP_66X
EEPROM.writeByte(EE_BYTE_ROTARYMODE, 1);
+84 -90
View File
@@ -1,6 +1,7 @@
#include "rds.h"
#include "constants.h"
#include "utils.h"
#include "graphics.h"
String HexStringold;
float smoothBER = 0;
@@ -17,37 +18,36 @@ void ShowAdvancedRDS() {
if (radio.rds.rdsDerror) tft.fillCircle(200, 41, 5, SignificantColor); else tft.fillCircle(200, 41, 5, InsignificantColor);
}
if (radio.rds.hasDynamicPTY != dynamicPTYold) {
if (radio.rds.hasDynamicPTY) tft.fillCircle(310, 137, 5, InsignificantColor); else tft.fillCircle(310, 137, 5, SignificantColor);
dynamicPTYold = radio.rds.hasDynamicPTY;
if(radio.rds.hasDynamicPTY.changed(0)) {
if(radio.rds.hasDynamicPTY.get()) tft.fillCircle(310, 137, 5, InsignificantColor); else tft.fillCircle(310, 137, 5, SignificantColor);
}
if (radio.rds.hasArtificialhead.changed(0)) {
if (radio.rds.hasArtificialhead) tft.fillCircle(310, 153, 5, InsignificantColor); else tft.fillCircle(310, 153, 5, SignificantColor);
if(radio.rds.hasArtificialhead.changed(0)) {
if(radio.rds.hasArtificialhead) tft.fillCircle(310, 153, 5, InsignificantColor); else tft.fillCircle(310, 153, 5, SignificantColor);
}
if (radio.rds.hasCompressed.changed(0)) {
if (radio.rds.hasCompressed) tft.fillCircle(310, 168, 5, InsignificantColor); else tft.fillCircle(310, 168, 5, SignificantColor);
if(radio.rds.hasCompressed.changed(0)) {
if(radio.rds.hasCompressed) tft.fillCircle(310, 168, 5, InsignificantColor); else tft.fillCircle(310, 168, 5, SignificantColor);
}
if (radio.rds.hasStereo.changed(0)) {
if (radio.rds.hasStereo) tft.fillCircle(310, 183, 5, InsignificantColor); else tft.fillCircle(310, 183, 5, SignificantColor);
if(radio.rds.hasStereo.changed(0)) {
if(radio.rds.hasStereo) tft.fillCircle(310, 183, 5, InsignificantColor); else tft.fillCircle(310, 183, 5, SignificantColor);
}
if (radio.rds.PTYN.changed(0) || rdsreset) {
if (!screenmute) {
if (radio.rds.PTYN.getPrev() != "PTYN N/A" || radio.rds.hasPTYN) {
tftPrint(ALEFT, "PTYN N/A", 216, 109, BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, radio.rds.PTYN.getPrev(), 216, 109, BackgroundColor, BackgroundColor, 16);
tftPrint16(ALEFT, "PTYN N/A", 216, 109, BackgroundColor, BackgroundColor);
tftPrint16(ALEFT, radio.rds.PTYN.getPrev(), 216, 109, BackgroundColor, BackgroundColor);
}
if (!radio.rds.hasPTYN) radio.rds.PTYN = "PTYN N/A";
tftPrint(ALEFT, String(radio.rds.PTYN), 216, 109, RDSColor, RDSColorSmooth, 16);
tftPrint16(ALEFT, String(radio.rds.PTYN), 216, 109, RDSColor, RDSColorSmooth); // PTYN is UCS-2, meaning no chinese characters. 美国人!
}
}
if (hasafold != radio.rds.hasAF) {
if (!screenmute) {
if (radio.rds.hasAF) tftPrint(ALEFT, "AF", 50, 51, RDSColor, RDSColorSmooth, 16); else tftPrint(ALEFT, "AF", 50, 51, GreyoutColor, BackgroundColor, 16);
if (radio.rds.hasAF) tftPrint16(ALEFT, "AF", 50, 51, RDSColor, RDSColorSmooth); else tftPrint16(ALEFT, "AF", 50, 51, GreyoutColor, BackgroundColor);
}
hasafold = radio.rds.hasAF;
}
@@ -65,39 +65,45 @@ void ShowAdvancedRDS() {
Udp.endPacket();
}
}
if(!screenmute) eccDisplay.update(ECCString, RDSstatus, RDSColor, RDSColorSmooth, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor);
if(!screenmute) {
uint8_t font = 0;
if(radio.rds.ECC.get() == 190) font = 1; // Chiba (Chiba)
else if(radio.rds.ECC.get() == 192) font = 1;
else if(radio.rds.ECC.get() == 201) font = 1;
eccDisplay.update(ECCString, RDSstatus, RDSColor, RDSColorSmooth, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, font);
}
String eonstring;
if (radio.eon_counter > 0) for (byte i = 0; i < radio.eon_counter; i++) eonstring += String(radio.eon[i].picode) + (radio.eon[i].ps.length() > 0 ? String(": " + String(radio.eon[i].ps)) : "") + (radio.eon[i].mappedfreq > 0 ? String(" " + String(radio.eon[i].mappedfreq / 100) + "." + String((radio.eon[i].mappedfreq % 100) / 10)) : "") + (radio.eon[i].mappedfreq2 > 0 ? String(" / " + String(radio.eon[i].mappedfreq2 / 100) + "." + String((radio.eon[i].mappedfreq2 % 100) / 10)) : "") + (radio.eon[i].mappedfreq3 > 0 ? String(" / " + String(radio.eon[i].mappedfreq3 / 100) + "." + String((radio.eon[i].mappedfreq3 % 100) / 10)) : "") + (i == radio.eon_counter - 1 ? "" : " | "); else eonstring = textUI(85);
if (radio.rds.hasEON.changed(0)) {
if (!screenmute) {
if (radio.eon_counter > 0) tftPrint(ALEFT, "EON", 153, 51, RDSColor, RDSColorSmooth, 16); else tftPrint(ALEFT, "EON", 153, 51, GreyoutColor, BackgroundColor, 16);
if (radio.eon_counter > 0) tftPrint16(ALEFT, "EON", 153, 51, RDSColor, RDSColorSmooth); else tftPrint16(ALEFT, "EON", 153, 51, GreyoutColor, BackgroundColor);
}
}
if(!screenmute) eonDisplay.update(eonstring, RDSstatus, RDSColor, RDSColorSmooth, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor);
String rtplusstring;
if (radio.rds.hasRTplus) rtplusstring = (radio.rds.rdsplusTag1 != 169 ? String(textUI(radio.rds.rdsplusTag1)) + ": " + String(radio.rds.RTContent1) : "") + (radio.rds.rdsplusTag2 != 169 ? " - " + String(textUI(radio.rds.rdsplusTag2)) + ": " + String(radio.rds.RTContent2) : ""); else rtplusstring = textUI(86);
if (radio.rds.hasRTplus) rtplusstring = (radio.rds.rdsplusTag1 != 166 ? String(textUI(radio.rds.rdsplusTag1)) + ": " + String(radio.rds.RTContent1) : "") + (radio.rds.rdsplusTag2 != 169 ? " - " + String(textUI(radio.rds.rdsplusTag2)) + ": " + String(radio.rds.RTContent2) : ""); else rtplusstring = textUI(86);
if (radio.rds.hasRTplus.changed(0)) {
if (!screenmute) {
if (radio.rds.hasRTplus) tftPrint(ALEFT, "RT+", 123, 51, RDSColor, RDSColorSmooth, 16); else tftPrint(ALEFT, "RT+", 123, 51, GreyoutColor, BackgroundColor, 16);
if (radio.rds.hasRTplus) tftPrint16(ALEFT, "RT+", 123, 51, RDSColor, RDSColorSmooth); else tftPrint16(ALEFT, "RT+", 123, 51, GreyoutColor, BackgroundColor);
}
}
if(!screenmute) rtplusDisplay.update(rtplusstring, RDSstatus, RDSColor, RDSColorSmooth, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor);
if (radio.rds.TP.changed(0) && !screenmute) {
if (radio.rds.TP) tftPrint(ALEFT, "TP", 2, 51, RDSColor, RDSColorSmooth, 16); else tftPrint(ALEFT, "TP", 2, 51, GreyoutColor, BackgroundColor, 16);
if (radio.rds.TP) tftPrint16(ALEFT, "TP", 2, 51, RDSColor, RDSColorSmooth); else tftPrint16(ALEFT, "TP", 2, 51, GreyoutColor, BackgroundColor);
}
if (radio.rds.TA.changed(0) && !screenmute) {
if (radio.rds.TA) tftPrint(ALEFT, "TA", 24, 51, RDSColor, RDSColorSmooth, 16); else tftPrint(ALEFT, "TA", 24, 51, GreyoutColor, BackgroundColor, 16);
if (radio.rds.TA) tftPrint16(ALEFT, "TA", 24, 51, RDSColor, RDSColorSmooth); else tftPrint16(ALEFT, "TA", 24, 51, GreyoutColor, BackgroundColor);
}
if (afmethodBold != radio.afmethodB || rdsreset) {
if (!screenmute) {
if (radio.afmethodB) tftPrint(ALEFT, "-B", 68, 51, RDSColor, RDSColorSmooth, 16); else tftPrint(ALEFT, "-B", 68, 51, GreyoutColor, BackgroundColor, 16);
if (radio.afmethodB) tftPrint16(ALEFT, "-B", 68, 51, RDSColor, RDSColorSmooth); else tftPrint16(ALEFT, "-B", 68, 51, GreyoutColor, BackgroundColor);
}
afmethodBold = radio.afmethodB;
}
@@ -110,7 +116,7 @@ void ShowAdvancedRDS() {
if (radio.rds.hasTMC.changed(0)) {
if (!screenmute) {
if (radio.rds.hasTMC) tftPrint(ALEFT, "TMC", 88, 51, RDSColor, RDSColorSmooth, 16); else tftPrint(ALEFT, "TMC", 88, 51, GreyoutColor, BackgroundColor, 16);
if (radio.rds.hasTMC) tftPrint16(ALEFT, "TMC", 88, 51, RDSColor, RDSColorSmooth); else tftPrint16(ALEFT, "TMC", 88, 51, GreyoutColor, BackgroundColor);
}
}
@@ -121,7 +127,7 @@ void doAF() {
if (radio.af_counter != af_counterold && radio.rds.hasAF) {
if (wifi) {
Udp.beginPacket(remoteip, 9030);
Udp.print("from=TEF_tuner_" + String(stationlistid, DEC) + ";AF=");
Udp.print("from=TEF_tuner_" + String(stationlistid) + ";AF=");
for (byte af_scan = 0; af_scan < radio.af_counter; af_scan++) {
if (wifi) {
@@ -153,7 +159,7 @@ void readRds() {
else {
tftPrint(ALEFT, PIold, 240, advancedRDS ? 72 : 184, RDSDropoutColor, RDSDropoutColorSmooth, 16);
tftPrint(ALEFT, stationIDold, 240, advancedRDS ? 89 : 201, RDSDropoutColor, RDSDropoutColorSmooth, 16);
tftPrint( 1, stationStateold, 318, advancedRDS ? 89 : 201, RDSDropoutColor, RDSDropoutColorSmooth, 16);
tftPrint(1, stationStateold, 318, advancedRDS ? 89 : 201, RDSDropoutColor, RDSDropoutColorSmooth, 16);
}
if (!radio.rds.hasLongPS) {
@@ -182,7 +188,7 @@ void readRds() {
if (!rdsstatscreen) {
if (radio.rds.region == 0) tftPrint(ACENTER, PIold, 275, advancedRDS ? 75 : 187, RDSColor, RDSColorSmooth, 28);
else {
tftPrint(ALEFT, PIold, 240, advancedRDS ? 72 : 184, RDSColor, RDSColorSmooth, 16);
tftPrint16(ALEFT, PIold, 240, advancedRDS ? 72 : 184, RDSColor, RDSColorSmooth);
tftPrint(ALEFT, stationIDold, 240, advancedRDS ? 89 : 201, RDSColor, RDSColorSmooth, 16);
tftPrint( 1, stationStateold, 318, advancedRDS ? 89 : 201, advancedRDS ? RDSColor : RDSDropoutColor, advancedRDS ? RDSColorSmooth : RDSDropoutColorSmooth, 16);
}
@@ -198,8 +204,7 @@ void readRds() {
} else {
PSSprite.setTextColor(RDSColor, RDSColorSmooth, false);
PSSprite.drawString(PSold, 0, 2);
}
PSSprite.pushSprite(36, advancedRDS ? 72 : 185);
} PSSprite.pushSprite(36, advancedRDS ? 72 : 185);
}
tft.fillCircle(314, 223, 2, GreyoutColor);
@@ -243,13 +248,13 @@ void readRds() {
sprintf(hexbuf, "%04X", radio.rds.rdsD); XDRGTKRDS += hexbuf;
uint8_t erroutput = 0;
erroutput |= ((radio.rds.rdsErr >> 8) & B00110000) >> 4;
erroutput |= ((radio.rds.rdsErr >> 8) & B00001100);
erroutput |= ((radio.rds.rdsErr >> 8) & B00000011) << 4;
erroutput |= ((radio.rds.rdsErr >> 8) & 0x30) >> 4;
erroutput |= ((radio.rds.rdsErr >> 8) & 0xC);
erroutput |= ((radio.rds.rdsErr >> 8) & 3) << 4;
sprintf(hexbuf, "%X%X", (erroutput >> 4) & 0xF, erroutput & 0xF);
XDRGTKRDS += hexbuf;
XDRGTKRDS += '\n';
XDRGTKRDS += F('\n');
if (XDRGTKRDS.changed(0)) {
uint8_t piError = radio.rds.rdsErr >> 14;
@@ -361,15 +366,14 @@ void showPI() {
else tftReplace(ACENTER, PIold, radio.rds.picode, 275, 75, RDSColor, RDSColorSmooth, BackgroundColor, 28);
} else {
if (!RDSstatus) {
if (String(radio.rds.picode) != PIold) tftReplace(ALEFT, PIold, radio.rds.picode, 240, 72, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 16);
if (String(radio.rds.picode) != PIold) tftReplace16(ALEFT, PIold, radio.rds.picode, 240, 72, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor);
tftReplace(ALEFT, stationIDold, radio.rds.stationIDtext, 240, 89, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 16);
} else {
if (String(radio.rds.picode) != PIold) tftReplace(ALEFT, PIold, radio.rds.picode, 240, 72, RDSColor, RDSColorSmooth, BackgroundColor, 16);
if (String(radio.rds.picode) != PIold) tftReplace16(ALEFT, PIold, radio.rds.picode, 240, 72, RDSColor, RDSColorSmooth, BackgroundColor);
tftReplace(ALEFT, stationIDold, radio.rds.stationIDtext, 240, 89, RDSColor, RDSColorSmooth, BackgroundColor, 16);
} tftReplace(ARIGHT, stationStateold, radio.rds.stationStatetext, 318, 89, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 16);
}
tftReplace(ARIGHT, stationStateold, radio.rds.stationStatetext, 318, 89, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 16);
}
} else if (afscreen) tftReplace(ALEFT, PIold, radio.rds.picode, 30, 201, BWAutoColor, BWAutoColorSmooth, BackgroundColor, 16);
} else if (afscreen) tftReplace16(ALEFT, PIold, radio.rds.picode, 30, 201, BWAutoColor, BWAutoColorSmooth, BackgroundColor);
else if (!rdsstatscreen) {
if (radio.rds.region == 0) {
if (!RDSstatus) tftReplace(ACENTER, PIold, radio.rds.picode, 275, 187, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 28);
@@ -377,12 +381,12 @@ void showPI() {
} else {
if (!RDSstatus) {
if (String(radio.rds.picode) != PIold || radio.rds.stationIDtext != stationIDold) {
tftReplace(ALEFT, PIold, radio.rds.picode, 240, 184, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 16);
tftReplace16(ALEFT, PIold, radio.rds.picode, 240, 184, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor);
tftReplace(ALEFT, stationIDold, radio.rds.stationIDtext, 240, 201, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 16);
}
} else {
if (String(radio.rds.picode) != PIold || radio.rds.stationIDtext != stationIDold) {
tftReplace(ALEFT, PIold, radio.rds.picode, 240, 184, RDSColor, RDSColorSmooth, BackgroundColor, 16);
tftReplace16(ALEFT, PIold, radio.rds.picode, 240, 184, RDSColor, RDSColorSmooth, BackgroundColor);
tftReplace(ALEFT, stationIDold, radio.rds.stationIDtext, 240, 201, RDSColor, RDSColorSmooth, BackgroundColor, 16);
tftReplace(ARIGHT, stationStateold, radio.rds.stationStatetext, 318, 201, RDSDropoutColor, RDSDropoutColorSmooth, BackgroundColor, 16);
}
@@ -404,7 +408,7 @@ void showPI() {
void showPTY() {
if(radio.rds.PTY.changed(0)) {
String PTYString = (radio.rds.region != 0 ? (radio.rds.region == 0 ? PTY_EU[radio.rds.PTY] : PTY_USA[radio.rds.PTY]) : textUI(225 + radio.rds.PTY));
String PTYString = (radio.rds.region != 0 ? (radio.rds.region == 0 ? PTY_EU[radio.rds.PTY] : PTY_USA[radio.rds.PTY]) : textUI(224 + radio.rds.PTY));
GeneralTextSprite.fillSprite(TFT_TRANSPARENT);
GeneralTextSprite.fillRect(0, 0, 160, 19, BackgroundColor);
if(RDSstatus) GeneralTextSprite.setTextColor(RDSColor, RDSColorSmooth, false);
@@ -487,10 +491,8 @@ void showCT() {
char dateStr[9];
time_t t = rtc.getEpoch();
if (NTPupdated) {
t += NTPoffset * 3600; // Convert offset from hours to seconds
t += Timezone * 3600;
if (autoDST && isDST(t)) t += 3600;
}
auto localtm = localtime(&t);
@@ -509,17 +511,15 @@ void showCT() {
if (hour < 0 || hour > 23) hour = 0;
snprintf(timeStr, sizeof(timeStr), "%02d:%02d:%02d", hour, localtm->tm_min, localtm->tm_sec);
}
rds_clock = String(timeStr);
} rds_clock = String(timeStr);
if (clockampm) strftime(dateStr, sizeof(dateStr), "%m-%d-%y", localtm);
else strftime(dateStr, sizeof(dateStr), "%d-%m-%y", localtm);
rds_date = String(dateStr);
if (!screenmute && showclock && (rds_clock != rds_clockold || rds_date != rds_dateold || radio.rds.hasCT.changed(0))) {
tftReplace(ACENTER, rds_clockold, rds_clock, 134, 1, RDSColor, RDSColorSmooth, BackgroundColor, 16);
tftReplace(ACENTER, rds_dateold, rds_date, 134, 15, RDSColor, RDSColorSmooth, BackgroundColor, 16);
tftReplace16(ACENTER, rds_clockold, rds_clock, 134, 1, RDSColor, RDSColorSmooth, BackgroundColor);
tftReplace16(ACENTER, rds_dateold, rds_date, 134, 15, RDSColor, RDSColorSmooth, BackgroundColor);
rds_clockold = rds_clock;
rds_dateold = rds_date;
}
@@ -546,11 +546,8 @@ void showRadioText() {
if (RThex[i] < 0x10) Udp.print("0");
if (RThex[i] == ' ') RThex[i] = '_';
Udp.print(String(RThex[i], HEX));
}
Udp.endPacket();
}
RTold = RTString;
} Udp.endPacket();
} RTold = RTString;
}
}
@@ -559,16 +556,16 @@ void ShowAFEON() {
if (radio.eon_counter > 9) {
if (!afpage) {
afpage = true;
tftPrint(ARIGHT, String(afpagenr) + "/2", 315, 201, BackgroundColor, BackgroundColor, 16);
tftPrint16(ARIGHT, String(afpagenr) + "/2", 315, 201, BackgroundColor, BackgroundColor);
}
}
if (afpage) tftPrint(ARIGHT, String(afpagenr) + "/3", 315, 201, ActiveColor, ActiveColorSmooth, 16); else tftPrint(ARIGHT, String(afpagenr) + "/2", 315, 201, ActiveColor, ActiveColorSmooth, 16);
if (afpage) tftPrint16(ARIGHT, String(afpagenr) + "/3", 315, 201, ActiveColor, ActiveColorSmooth); else tftPrint16(ARIGHT, String(afpagenr) + "/2", 315, 201, ActiveColor, ActiveColorSmooth);
if (radio.rds.hasAF && afpagenr == 1) {
if (!hasafold) {
tftPrint(ALEFT, textUI(84), 6, 48, BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, "AF:", 4, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint16(ALEFT, "AF:", 4, 32, ActiveColor, ActiveColorSmooth);
hasafold = true;
}
@@ -591,10 +588,10 @@ void ShowAFEON() {
if (radio.eon_counter > 0 && afpagenr > 1) {
if (!haseonold) {
tftPrint(ALEFT, textUI(85), 6, 48, BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, "PI", 4, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint(ACENTER, "TA", 250, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint(ACENTER, "TP", 276, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint(ACENTER, "PTY", 304, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint16(ALEFT, "PI", 4, 32, ActiveColor, ActiveColorSmooth);
tftPrint16(ACENTER, "TA", 256, 32, ActiveColor, ActiveColorSmooth);
tftPrint16(ACENTER, "TP", 282, 32, ActiveColor, ActiveColorSmooth);
tftPrint16(ACENTER, "PTY", 310, 32, ActiveColor, ActiveColorSmooth);
haseonold = true;
}
@@ -621,7 +618,7 @@ void ShowAFEON() {
strcpy(eonpicodeold[i + y], radio.eon[i + y].picode);
if (radio.eon[i + y].ps.length() > 0) {
tftPrint(ALEFT, "PS", 46, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint16(ALEFT, "PS", 46, 32, ActiveColor, ActiveColorSmooth);
if (strcmp(radio.eon[i + y].ps.c_str(), eonpsold[i + y].c_str()) != 0) tftPrint(ALEFT, eonpsold[i + y].c_str(), 46, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, radio.eon[i + y].ps.c_str(), 46, 48 + (15 * i), RDSDropoutColor, RDSDropoutColorSmooth, 16);
@@ -629,67 +626,67 @@ void ShowAFEON() {
} else tftPrint(ALEFT, eonpsold[i + y].c_str(), 46, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
if (radio.eon[i + y].mappedfreq > 0) {
tftPrint(ALEFT, "MF", 119, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint(ALEFT, "MF", 125, 32, ActiveColor, ActiveColorSmooth, 16);
if (radio.eon[i + y].mappedfreq != mappedfreqold[i + y]) {
char oldFreq[10];
dtostrf(mappedfreqold[i + y] / 100.0, 5, 1, oldFreq);
tftPrint(ALEFT, oldFreq, 115, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, oldFreq, 121, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
}
char newFreq[10];
dtostrf(radio.eon[i + y].mappedfreq / 100.0, 5, 1, newFreq);
tftPrint(ALEFT, newFreq, 115, 48 + (15 * i), RDSDropoutColor, RDSDropoutColorSmooth, 16);
tftPrint(ALEFT, newFreq, 121, 48 + (15 * i), RDSDropoutColor, RDSDropoutColorSmooth, 16);
mappedfreqold[i + y] = radio.eon[i + y].mappedfreq;
} else {
char oldFreq[10];
dtostrf(mappedfreqold[i + y] / 100.0, 5, 1, oldFreq);
tftPrint(ALEFT, oldFreq, 115, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, oldFreq, 121, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
}
if (radio.eon[i + y].mappedfreq2 > 0) {
tftPrint(ALEFT, "MF2", 162, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint(ALEFT, "MF2", 168, 32, ActiveColor, ActiveColorSmooth, 16);
if (radio.eon[i + y].mappedfreq2 != mappedfreqold2[i + y]) {
char oldFreq2[10];
dtostrf(mappedfreqold2[i + y] / 100.0, 5, 1, oldFreq2);
tftPrint(ALEFT, oldFreq2, 160, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, oldFreq2, 166, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
}
char newFreq2[10];
dtostrf(radio.eon[i + y].mappedfreq2 / 100.0, 5, 1, newFreq2);
tftPrint(ALEFT, newFreq2, 160, 48 + (15 * i), RDSDropoutColor, RDSDropoutColorSmooth, 16);
tftPrint(ALEFT, newFreq2, 166, 48 + (15 * i), RDSDropoutColor, RDSDropoutColorSmooth, 16);
mappedfreqold2[i + y] = radio.eon[i + y].mappedfreq2;
} else {
char oldFreq2[10];
dtostrf(mappedfreqold2[i + y] / 100.0, 5, 1, oldFreq2);
tftPrint(ALEFT, oldFreq2, 160, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, oldFreq2, 166, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
}
if (radio.eon[i + y].mappedfreq3 > 0) {
tftPrint(ALEFT, "MF3", 207, 32, ActiveColor, ActiveColorSmooth, 16);
tftPrint(ALEFT, "MF3", 213, 32, ActiveColor, ActiveColorSmooth, 16);
if (radio.eon[i + y].mappedfreq3 != mappedfreqold3[i + y]) {
char oldFreq3[10];
dtostrf(mappedfreqold3[i + y] / 100.0, 5, 1, oldFreq3);
tftPrint(ALEFT, oldFreq3, 205, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, oldFreq3, 211, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
}
char newFreq3[10];
dtostrf(radio.eon[i + y].mappedfreq3 / 100.0, 5, 1, newFreq3);
tftPrint(ALEFT, newFreq3, 205, 48 + (15 * i), RDSDropoutColor, RDSDropoutColorSmooth, 16);
tftPrint(ALEFT, newFreq3, 211, 48 + (15 * i), RDSDropoutColor, RDSDropoutColorSmooth, 16);
mappedfreqold3[i + y] = radio.eon[i + y].mappedfreq3;
} else {
char oldFreq3[10];
dtostrf(mappedfreqold3[i + y] / 100.0, 5, 1, oldFreq3);
tftPrint(ALEFT, oldFreq3, 205, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
tftPrint(ALEFT, oldFreq3, 211, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
}
if (radio.eon[i + y].ptyset) {
if (eonptyold[i + y] != radio.eon[i + y].pty) tft.fillRect(290, 48 + (15 * i), 29, 16, BackgroundColor);
if (radio.eon[i + y].pty != 254) tftPrint(ARIGHT, String(radio.eon[i + y].pty), 310, 48 + (15 * i), RDSColor, RDSColorSmooth, 16);
if (eonptyold[i + y] != radio.eon[i + y].pty) tft.fillRect(296, 48 + (15 * i), 24, 16, BackgroundColor);
if (radio.eon[i + y].pty != 254) tftPrint(ARIGHT, String(radio.eon[i + y].pty), 316, 48 + (15 * i), RDSColor, RDSColorSmooth, 16);
eonptyold[i + y] = radio.eon[i + y].pty;
} else tft.fillRect(290, 48 + (15 * i), 29, 16, BackgroundColor);
} else tft.fillRect(296, 48 + (15 * i), 24, 16, BackgroundColor);
if (radio.eon[i + y].ta) tftPrint(ACENTER, "O", 250, 48 + (15 * i), RDSColor, RDSColorSmooth, 16); else tftPrint(ACENTER, "O", 250, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
if (radio.eon[i + y].tp) tftPrint(ACENTER, "O", 276, 48 + (15 * i), RDSColor, RDSColorSmooth, 16); else tftPrint(ACENTER, "O", 276, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
if (radio.eon[i + y].ta) tftPrint(ACENTER, "O", 256, 48 + (15 * i), RDSColor, RDSColorSmooth, 16); else tftPrint(ACENTER, "O", 250, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
if (radio.eon[i + y].tp) tftPrint(ACENTER, "O", 282, 48 + (15 * i), RDSColor, RDSColorSmooth, 16); else tftPrint(ACENTER, "O", 276, 48 + (15 * i), BackgroundColor, BackgroundColor, 16);
}
}
}
@@ -709,8 +706,7 @@ void ShowAFEON() {
uint8_t nibble = (radio.rds.aid[y] >> (4 * (3 - z))) & 0xF;
if (nibble < 10) id[z] = nibble + '0';
else id[z] = nibble - 10 + 'A';
}
id[4] = '\0';
} id[4] = '\0';
AIDStringTemp += String(id);
AIDStringTemp += ": ";
@@ -731,9 +727,7 @@ void ShowAFEON() {
AIDWidth = FullLineSprite.textWidth(AIDString);
AIDStringold = AIDString;
}
}
aidDisplay.update(AIDString, true, ActiveColor, ActiveColorSmooth, 0, 0, BackgroundColor);
} aidDisplay.update(AIDString, true, ActiveColor, ActiveColorSmooth, 0, 0, BackgroundColor);
}
}
@@ -782,7 +776,7 @@ void ShowRDSStatistics() {
if (lastX >= 0 && (lastX != xpos || lastY != ypos)) tft.fillCircle(lastX - 55, lastY + 7, 2, SignificantColor);
tftReplace(ARIGHT, oldBuf, newBuf, xpos, ypos, PrimaryColor, PrimaryColorSmooth, BackgroundColor, 16);
tftPrint(ACENTER, "%", xposPct, ypos, ActiveColor, ActiveColorSmooth, 16);
tftPrint(ACENTER, F("%"), xposPct, ypos, ActiveColor, ActiveColorSmooth, 16);
tft.fillCircle(xpos - 55, ypos + 7, 2, InsignificantColor);
@@ -794,11 +788,11 @@ void ShowRDSStatistics() {
}
String HexString = String(((radio.rds.rdsA >> 12) & 0xF), HEX) + String(((radio.rds.rdsA >> 8) & 0xF), HEX) + String(((radio.rds.rdsA >> 4) & 0xF), HEX) + String((radio.rds.rdsA & 0xF), HEX);
HexString += " ";
HexString += F(" ");
HexString += String(((radio.rds.rdsB >> 12) & 0xF), HEX) + String(((radio.rds.rdsB >> 8) & 0xF), HEX) + String(((radio.rds.rdsB >> 4) & 0xF), HEX) + String((radio.rds.rdsB & 0xF), HEX);
HexString += " ";
HexString += F(" ");
HexString += String(((radio.rds.rdsC >> 12) & 0xF), HEX) + String(((radio.rds.rdsC >> 8) & 0xF), HEX) + String(((radio.rds.rdsC >> 4) & 0xF), HEX) + String((radio.rds.rdsC & 0xF), HEX);
HexString += " ";
HexString += F(" ");
HexString += String(((radio.rds.rdsD >> 12) & 0xF), HEX) + String(((radio.rds.rdsD >> 8) & 0xF), HEX) + String(((radio.rds.rdsD >> 4) & 0xF), HEX) + String((radio.rds.rdsD & 0xF), HEX);
HexString.toUpperCase();
@@ -809,7 +803,7 @@ void ShowRDSStatistics() {
}
if (radio.processed_rdsblocks > 0 && !dropout) {
const uint8_t xErr[4] = {86, 124, 162, 200};
constexpr uint8_t xErr[4] = {86, 124, 162, 200};
const bool errors[4] = {radio.rds.rdsAerror, radio.rds.rdsBerror, radio.rds.rdsCerror, radio.rds.rdsDerror};
for (uint8_t i = 0; i < 4; i++) tft.fillCircle(xErr[i], 41, 5, errors[i] ? SignificantColor : InsignificantColor);
@@ -819,22 +813,22 @@ void ShowRDSStatistics() {
int errC = ((radio.rds.rdsErr >> 8) & 12) >> 2;
int errD = (radio.rds.rdsErr & 3);
const int weights[4] = {0, 2, 6, 12};
constexpr int weights[4] = {0, 2, 6, 12};
int errorBits = weights[errA] + weights[errB] + weights[errC] + weights[errD];
int totalBits = 4 * 26;
constexpr int totalBits = 4 * 26;
float ber = (float)errorBits / (float)totalBits;
ber = sqrt(ber);
if (ber > 1.0) ber = 1.0;
float alpha = 0.05;
constexpr float alpha = 0.05;
smoothBER = (1.0 - alpha) * smoothBER + alpha * ber;
int berPercent = (int)(smoothBER * 100.0);
if (berPercentold != berPercent) {
tftReplace(ARIGHT, String(berPercentold) + "%", String(berPercent) + "%", 318, 34, PrimaryColor, PrimaryColorSmooth, BackgroundColor, 16);
tftReplace(ARIGHT, String(berPercentold) + F("%"), String(berPercent) + F("%"), 318, 34, PrimaryColor, PrimaryColorSmooth, BackgroundColor, 16);
berPercentold = berPercent;
}
}
+18 -5
View File
@@ -1,4 +1,6 @@
#include "rtc.hpp"
#include "globals.h"
#include "nonvolatile.h"
// the hardware rtc driver was made with the support of Wh1teRabbitHU's implementation
@@ -45,6 +47,9 @@ inline byte sumValueFromBinary(byte binary, byte length) {
void sync_from_rx_rtc(int32_t offset = 0) {
if(!rx_rtc_avail) return;
auto old_clock = Wire.getClock();
Wire.setClock(400000);
struct tm timeinfo;
memset(&timeinfo, 0, sizeof(timeinfo));
@@ -66,10 +71,12 @@ void sync_from_rx_rtc(int32_t offset = 0) {
timeinfo.tm_mday = sumValueFromBinary(Wire.read(), 6);
timeinfo.tm_mon = sumValueFromBinary(Wire.read(), 5) - 1;
timeinfo.tm_year = sumValueFromBinary(Wire.read(), 8) + 100;
timeinfo.tm_year = sumValueFromBinary(Wire.read(), 8) + 126;
rtc.setTime(mktime(&timeinfo) + offset);
}
Wire.setClock(old_clock);
}
bool init_rtc() {
@@ -102,7 +109,7 @@ bool init_rtc() {
Wire.write(1 << 2);
Wire.write(toBCD(14));
Wire.write(1);
Wire.write(toBCD(26));
Wire.write(0);
Wire.endTransmission();
writeToModule(0x1F, 0); // Unset stop bit
return true;
@@ -111,12 +118,18 @@ bool init_rtc() {
writeToModule(0x1F, 0);
return true;
}
sync_from_rx_rtc();
sync_from_rx_rtc(1); // mystery offset, without it the time is offset by one second
return false;
}
void set_time(time_t time) {
void set_time(time_t time, int8_t offset) {
rtc.setTime(time);
if(Timezone != offset) {
EEPROM.writeByte(EE_BYTE_TIMEZONE, offset);
EEPROM.commit();
Timezone = offset;
}
if(!rx_rtc_avail) return;
struct tm* timeinfo = gmtime(&time);
writeToModule(0x1F, 64);
@@ -128,7 +141,7 @@ void set_time(time_t time) {
Wire.write(1 << timeinfo->tm_wday);
Wire.write(toBCD(timeinfo->tm_mday));
Wire.write(toBCD(timeinfo->tm_mon + 1));
Wire.write(toBCD((1900 + timeinfo->tm_year) % 100));
Wire.write(toBCD((1900 + timeinfo->tm_year - 26) % 100));
Wire.endTransmission();
writeToModule(0x1F, 0);
}
+5 -10
View File
@@ -159,11 +159,9 @@ void doTouchEvent(uint16_t x, uint16_t y) {
doBW();
BWtune = false;
bwtouchtune = false;
if (advancedRDS) {
BuildAdvancedRDS();
} else if (afscreen) {
BuildAFScreen();
} else {
if (advancedRDS) BuildAdvancedRDS();
else if (afscreen) BuildAFScreen();
else {
BuildDisplay();
SelectBand();
}
@@ -173,8 +171,7 @@ void doTouchEvent(uint16_t x, uint16_t y) {
showBWSelector();
doBW();
bwtouchtune = false;
}
return;
} return;
}
if (!BWtune && !menu && !advancedRDS && !seek && !afscreen) {
@@ -188,9 +185,7 @@ void doTouchEvent(uint16_t x, uint16_t y) {
} else if (x > 0 && x < 30 && y > 25 && y < 90) {
doTuneMode();
return;
} else if (x > 250 && x < 320 && y > 50 && y < 80) {
toggleiMSEQ();
}
} else if (x > 250 && x < 320 && y > 50 && y < 80) toggleiMSEQ();
}
if (!BWtune && !menu && advancedRDS && !seek && !afscreen) {
+2 -4
View File
@@ -96,8 +96,7 @@ String ucs2ToUtf8(const char* ucs2Input) {
utf8Output += (char)(0x80 | ((ucs2Char >> 6) & 0x3F));
utf8Output += (char)(0x80 | (ucs2Char & 0x3F));
}
}
return utf8Output;
} return utf8Output;
}
String extractUTF8Substring(const String & utf8String, size_t start, size_t length, bool underscore) {
@@ -133,6 +132,5 @@ String removeNewline(String inputString) {
for (int i = 0; i < inputString.length(); i++) {
if (inputString[i] == '\n') outputString += ' ';
else outputString += inputString[i];
}
return outputString;
} return outputString;
}