mirror of
https://github.com/JasonYANG170/logicanalyzer.git
synced 2024-11-23 20:16:29 +00:00
559 lines
17 KiB
C
559 lines
17 KiB
C
#include "LogicAnalyzer_Build_Settings.h"
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#include <stdio.h>
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#include <string.h>
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#include "pico/stdlib.h"
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#include "hardware/dma.h"
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#include "hardware/pio.h"
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#include "hardware/clocks.h"
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#include "hardware/flash.h"
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#include "pico/multicore.h"
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#include "LogicAnalyzer.pio.h"
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#include "LogicAnalyzer_Structs.h"
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#ifdef BUILD_PICO_W
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#include "pico/cyw43_arch.h"
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#ifdef ENABLE_WIFI
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#include "Event_Machine.h"
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#include "Shared_Buffers.h"
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#include "LogicAnalyzer_WiFi.h"
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#include "hardware/regs/usb.h"
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#include "hardware/structs/usb.h"
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bool usbDisabled = false;
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bool cywReady = false;
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bool skipWiFiData = false;
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bool dataFromWiFi = false;
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EVENT_FROM_WIFI wifiEventBuffer;
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WIFI_SETTINGS_REQUEST* wReq;
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#define MULTICORE_LOCKOUT_TIMEOUT (uint64_t)10 * 365 * 24 * 60 * 60 * 1000 * 1000
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#endif
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#endif
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#ifdef BUILD_PICO_W
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#define INIT_LED() { }
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#ifdef ENABLE_WIFI
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#define LED_ON() {\
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EVENT_FROM_FRONTEND lonEvt;\
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lonEvt.event = LED_ON;\
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event_push(&frontendToWifi, &lonEvt);\
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}
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#define LED_OFF() {\
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EVENT_FROM_FRONTEND loffEvt;\
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loffEvt.event = LED_OFF;\
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event_push(&frontendToWifi, &loffEvt);\
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}
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#else
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#define LED_ON() cyw43_arch_gpio_put(CYW43_WL_GPIO_LED_PIN, 1)
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#define LED_OFF() cyw43_arch_gpio_put(CYW43_WL_GPIO_LED_PIN, 0)
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#endif
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#else
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#define LED_IO 25
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#define INIT_LED() {\
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gpio_init(LED_IO); \
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gpio_set_dir(LED_IO, GPIO_OUT); \
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}
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#define LED_ON() gpio_put(LED_IO, 1)
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#define LED_OFF() gpio_put(LED_IO, 0)
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#endif
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//Buffer used to store received data
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uint8_t messageBuffer[128];
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//Position in the buffer
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uint8_t bufferPos = 0;
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//Capture status
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bool capturing = false;
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//Capture request pointer
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CAPTURE_REQUEST* req;
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#ifdef ENABLE_WIFI
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void storeSettings(WIFI_SETTINGS* settings)
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{
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uint8_t buffer[FLASH_PAGE_SIZE];
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memcpy(buffer, settings, sizeof(WIFI_SETTINGS));
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//multicore_lockout_start_blocking ();
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multicore_lockout_start_timeout_us(MULTICORE_LOCKOUT_TIMEOUT);
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uint32_t intStatus = save_and_disable_interrupts();
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flash_range_erase(FLASH_SETTINGS_OFFSET, FLASH_SECTOR_SIZE);
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for(int buc = 0; buc < 1000; buc++)
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{
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asm("nop");
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asm("nop");
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asm("nop");
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asm("nop");
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asm("nop");
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}
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flash_range_program(FLASH_SETTINGS_OFFSET, buffer, FLASH_PAGE_SIZE);
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for(int buc = 0; buc < 1000; buc++)
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{
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asm("nop");
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asm("nop");
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asm("nop");
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asm("nop");
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asm("nop");
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}
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restore_interrupts(intStatus);
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bool unlocked = false;
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do {
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unlocked = multicore_lockout_end_timeout_us(MULTICORE_LOCKOUT_TIMEOUT);
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} while(!unlocked);
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sleep_ms(500);
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}
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#endif
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void sendResponse(const char* response, bool toWiFi)
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{
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#ifdef ENABLE_WIFI
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if(toWiFi)
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{
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EVENT_FROM_FRONTEND evt;
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evt.event = SEND_DATA;
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evt.dataLength = strlen(response);
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memset(evt.data, 0, 32);
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memcpy(evt.data, response, evt.dataLength);
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event_push(&frontendToWifi, &evt);
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}
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else
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#endif
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printf(response);
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}
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void processData(uint8_t* data, uint length, bool fromWiFi)
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{
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for(uint pos = 0; pos < length; pos++)
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{
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//Store char in buffer and increment position
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messageBuffer[bufferPos++] = data[pos];
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//If we have stored the first byte and it is not 0x55 restart reception
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if(bufferPos == 1 && messageBuffer[0] != 0x55)
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bufferPos = 0;
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else if(bufferPos == 2 && messageBuffer[1] != 0xAA) //If we have stored the second byte and it is not 0xAA restart reception
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bufferPos = 0;
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else if(bufferPos >= 256) //Have we overflowed the buffer? then inform to the host and restart reception
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{
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sendResponse("ERR_MSG_OVERFLOW\n", fromWiFi);
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bufferPos = 0;
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}
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else if(bufferPos > 2) //Try to parse the data
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{
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if(messageBuffer[bufferPos - 2] == 0xAA && messageBuffer[bufferPos - 1] == 0x55) //Do we have the stop condition?
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{
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//Yes, unescape the buffer,
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int dest = 0;
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for(int src = 0; src < bufferPos; src++)
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{
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if(messageBuffer[src] == 0xF0)
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{
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messageBuffer[dest] = messageBuffer[src + 1] ^ 0xF0;
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src++;
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}
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else
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messageBuffer[dest] = messageBuffer[src];
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dest++;
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}
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switch(messageBuffer[2]) //Check the command we received
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{
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case 0: //ID request
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if(bufferPos != 5) //Malformed message?
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sendResponse("ERR_UNKNOWN_MSG\n", fromWiFi);
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else
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{
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#ifdef BUILD_PICO_W
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#ifdef ENABLE_WIFI
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sendResponse("LOGIC_ANALYZER_WIFI_V3_5\n", fromWiFi); //Our ID
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#else
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sendResponse("LOGIC_ANALYZER_W_V3_5\n", fromWiFi); //Our ID
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#endif
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#else
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sendResponse("LOGIC_ANALYZER_V3_5\n", fromWiFi); //Our ID
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#endif
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}
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break;
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case 1: //Capture request
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req = (CAPTURE_REQUEST*)&messageBuffer[3]; //Get the request pointer
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bool started = false;
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if(req->triggerType == 1) //Start complex trigger capture
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started = startCaptureComplex(req->frequency, req->preSamples, req->postSamples, (uint8_t*)&req->channels, req->channelCount, req->trigger, req->count, req->triggerValue, req->captureMode);
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else if(req->triggerType == 2) //start fast trigger capture
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started = startCaptureFast(req->frequency, req->preSamples, req->postSamples, (uint8_t*)&req->channels, req->channelCount, req->trigger, req->count, req->triggerValue, req->captureMode);
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else //Start simple trigger capture
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started = startCaptureSimple(req->frequency, req->preSamples, req->postSamples, (uint8_t*)&req->channels, req->channelCount, req->trigger, req->inverted, req->captureMode);
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if(started) //If started successfully inform to the host
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{
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sendResponse("CAPTURE_STARTED\n", fromWiFi);
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capturing = true;
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}
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else
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sendResponse("CAPTURE_ERROR\n", fromWiFi); //Else notify the error
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break;
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#ifdef ENABLE_WIFI
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case 2:
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wReq = (WIFI_SETTINGS_REQUEST*)&messageBuffer[3];
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WIFI_SETTINGS settings;
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memcpy(settings.apName, wReq->apName, 33);
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memcpy(settings.passwd, wReq->passwd, 64);
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memcpy(settings.ipAddress, wReq->ipAddress, 16);
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settings.port = wReq->port;
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for(int buc = 0; buc < 33; buc++)
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settings.checksum += settings.apName[buc];
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for(int buc = 0; buc < 64; buc++)
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settings.checksum += settings.passwd[buc];
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for(int buc = 0; buc < 16; buc++)
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settings.checksum += settings.ipAddress[buc];
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settings.checksum += settings.port;
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settings.checksum += 0x0f0f;
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storeSettings(&settings);
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wifiSettings = settings;
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EVENT_FROM_FRONTEND evt;
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evt.event = CONFIG_RECEIVED;
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event_push(&frontendToWifi, &evt);
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sendResponse("SETTINGS_SAVED\n", fromWiFi);
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break;
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#endif
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default:
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sendResponse("ERR_UNKNOWN_MSG\n", fromWiFi); //Unknown message
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break;
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}
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bufferPos = 0; //Reset buffer position
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}
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}
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}
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//PROTOCOL EXPLAINED:
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//
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//The protocol is very basic, it receives binary frames and sends strings terminated by a carriage return.
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//
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//Each binary frame has a start and an end condition, being these two secuences of two bytes:
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// start condition: 0x55 0xAA
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// stop condition: 0xAA 0x55
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//
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//This kind of framing can cause problems if the packets contain the frame condition bytes, there needs to be implemented
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//a scape character to avoid this.The char 0xF0 is used as escape character. Escaping is done by XOR'ing the scape character
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//with the scaped char. For example, if we need to send 0xAA we would send { 0xF0, 0x5A }, which is 0xAA XOR 0xF0 = 0x5A.
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//In case of sending the scape char we would send { 0xF0, 0x00 }.
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//
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//Inside each frame we have a command byte and additional data. Based on the command a binary struct will be deserialized
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//from the buffer. Right now the protocol has only two commands: ID request and capture request. ID request does not
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//have any data, but the capture request has a CAPTURE_REQUEST struct as data.
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}
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bool processUSBInput(bool skipProcessing)
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{
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//Try to get char
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uint data = getchar_timeout_us(0);
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//Timeout? Then leave
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if(data == PICO_ERROR_TIMEOUT)
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return false;
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uint8_t filteredData = (uint8_t)data;
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if(!skipProcessing)
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processData(&filteredData, 1, false);
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return true;
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}
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#ifdef ENABLE_WIFI
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void purgeUSBData()
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{
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while(getchar_timeout_us(0) != PICO_ERROR_TIMEOUT);
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}
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void wifiEvent(void* event)
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{
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EVENT_FROM_WIFI* wEvent = (EVENT_FROM_WIFI*)event;
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switch(wEvent->event)
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{
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case CYW_READY:
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cywReady = true;
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break;
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case CONNECTED:
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usbDisabled = true;
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//disableUSB();
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break;
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case DISCONNECTED:
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usbDisabled = false;
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purgeUSBData();
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//enableUSB();
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break;
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case DATA_RECEIVED:
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if(skipWiFiData)
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dataFromWiFi = true;
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else
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processData(wEvent->data, wEvent->dataLength, true);
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break;
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}
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}
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bool processWiFiInput(bool skipProcessing)
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{
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bool res = event_has_events(&wifiToFrontend);
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if(skipProcessing)
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{
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skipWiFiData = true;
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dataFromWiFi = false;
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}
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event_process_queue(&wifiToFrontend, &wifiEventBuffer, 8);
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skipWiFiData = false;
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return dataFromWiFi;
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}
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#endif
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void processInput()
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{
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#ifdef ENABLE_WIFI
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if(!usbDisabled)
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processUSBInput(false);
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processWiFiInput(false);
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#else
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processUSBInput(false);
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#endif
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}
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bool processCancel()
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{
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#ifdef ENABLE_WIFI
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if(!usbDisabled)
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if(processUSBInput(true))
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return true;
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return processWiFiInput(true);
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#else
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return processUSBInput(true);
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#endif
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}
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int main()
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{
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//Overclock Powerrrr!
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set_sys_clock_khz(200000, true);
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//Initialize USB stdio
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stdio_init_all();
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#ifdef BUILD_PICO_W
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#ifdef ENABLE_WIFI
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event_machine_init(&wifiToFrontend, wifiEvent, sizeof(EVENT_FROM_WIFI), 8);
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multicore_launch_core1(runWiFiCore);
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while(!cywReady)
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event_process_queue(&wifiToFrontend, &wifiEventBuffer, 1);
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#else
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cyw43_arch_init();
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#endif
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#endif
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//A bit of delay, if the program tries to send data before Windows has identified the device it may crash
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sleep_ms(1000);
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//Clear message buffer
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memset(messageBuffer, 0, 128);
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//Configure led
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INIT_LED();
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LED_ON();
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while(1)
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{
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//Are we capturing?
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if(capturing)
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{
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//Is the PIO units still working?
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if(!IsCapturing())
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{
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//Retrieve the capture buffer and get info about it.
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uint32_t length, first;
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CHANNEL_MODE mode;
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uint8_t* buffer = GetBuffer(&length, &first, &mode);
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//Send the data to the host
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uint8_t* lengthPointer = (uint8_t*)&length;
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//Send capture length
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sleep_ms(100);
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#ifdef ENABLE_WIFI
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if(usbDisabled)
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{
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EVENT_FROM_FRONTEND evt;
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evt.event = SEND_DATA;
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evt.dataLength = 4;
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memcpy(evt.data, lengthPointer, 4);
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event_push(&frontendToWifi, &evt);
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}
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else
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{
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putchar_raw(lengthPointer[0]);
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putchar_raw(lengthPointer[1]);
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putchar_raw(lengthPointer[2]);
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putchar_raw(lengthPointer[3]);
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}
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#else
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putchar_raw(lengthPointer[0]);
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putchar_raw(lengthPointer[1]);
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putchar_raw(lengthPointer[2]);
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putchar_raw(lengthPointer[3]);
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#endif
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sleep_ms(100);
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//Tanslate sample numbers to byte indexes, makes easier to send data
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switch(mode)
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{
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case MODE_16_CHANNEL:
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length *= 2;
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first *= 2;
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break;
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case MODE_24_CHANNEL:
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length *= 4;
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first *= 4;
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break;
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}
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#ifdef ENABLE_WIFI
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//Send the samples
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if(usbDisabled)
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{
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EVENT_FROM_FRONTEND evt;
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evt.event = SEND_DATA;
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int pos = 0;
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int filledData;
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while(pos < length)
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{
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filledData = 0;
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while(pos < length && filledData < 32)
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{
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evt.data[filledData] = buffer[first++];
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if(first >= 131072)
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first = 0;
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pos++;
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filledData++;
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}
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evt.dataLength = filledData;
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event_push(&frontendToWifi, &evt);
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}
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}
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else
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{
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for(int buc = 0; buc < length; buc++)
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{
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putchar_raw(buffer[first++]);
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if(first >= 131072)
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first = 0;
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}
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}
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#else
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//Send the samples
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for(int buc = 0; buc < length; buc++)
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{
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putchar_raw(buffer[first++]);
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if(first >= 131072)
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first = 0;
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}
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#endif
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//Done!
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capturing = false;
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}
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else
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{
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LED_OFF();
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sleep_ms(1000);
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//Check for cancel request
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if(processCancel())
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{
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//Stop capture
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stopCapture();
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capturing = false;
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LED_ON();
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}
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else
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{
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LED_ON();
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check_fast_interrupt();
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sleep_ms(1000);
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}
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}
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}
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else
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processInput(); //Read incomming data
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}
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return 0;
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} |