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Enhance audio_4_channel_mic example, plot 4 different waves for each channel.
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@ -34,17 +34,16 @@
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#include <stdlib.h>
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#include <stdio.h>
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#include <string.h>
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#include "arm_math.h"
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#include "bsp/board_api.h"
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#include "tusb.h"
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#include "tusb_config.h"
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//--------------------------------------------------------------------+
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// MACRO CONSTANT TYPEDEF PROTYPES
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//--------------------------------------------------------------------+
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#ifndef AUDIO_SAMPLE_RATE
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#define AUDIO_SAMPLE_RATE 48000
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#endif
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#define AUDIO_SAMPLE_RATE CFG_TUD_AUDIO_FUNC_1_SAMPLE_RATE
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/* Blink pattern
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* - 250 ms : device not mounted
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@ -70,7 +69,7 @@ uint8_t clkValid;
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audio_control_range_2_n_t(1) volumeRng[CFG_TUD_AUDIO_FUNC_1_N_CHANNELS_TX+1]; // Volume range state
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audio_control_range_4_n_t(1) sampleFreqRng; // Sample frequency range state
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// Audio test data
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// Audio test data, each buffer contains 2 channels, buffer[0] for CH0-1, buffer[1] for CH1-2
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uint16_t i2s_dummy_buffer[CFG_TUD_AUDIO_FUNC_1_N_TX_SUPP_SW_FIFO][CFG_TUD_AUDIO_FUNC_1_TX_SUPP_SW_FIFO_SZ/2]; // Ensure half word aligned
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void led_blinking_task(void);
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@ -400,7 +399,8 @@ bool tud_audio_tx_done_pre_load_cb(uint8_t rhport, uint8_t itf, uint8_t ep_in, u
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(void) ep_in;
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(void) cur_alt_setting;
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for (uint8_t cnt=0; cnt < CFG_TUD_AUDIO_FUNC_1_N_TX_SUPP_SW_FIFO; cnt++)
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// Write buffer[0] (CH0-1) and buffer[1] (CH1-2) into FIFO
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for (uint8_t cnt=0; cnt < 2; cnt++)
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{
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tud_audio_write_support_ff(cnt, i2s_dummy_buffer[cnt], AUDIO_SAMPLE_RATE/1000 * CFG_TUD_AUDIO_FUNC_1_N_BYTES_PER_SAMPLE_TX * CFG_TUD_AUDIO_FUNC_1_CHANNEL_PER_FIFO_TX);
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}
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@ -416,22 +416,27 @@ bool tud_audio_tx_done_post_load_cb(uint8_t rhport, uint16_t n_bytes_copied, uin
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(void) ep_in;
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(void) cur_alt_setting;
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uint16_t dataVal;
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// Generate dummy data
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for (uint16_t cnt = 0; cnt < CFG_TUD_AUDIO_FUNC_1_N_TX_SUPP_SW_FIFO; cnt++)
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uint16_t * p_buff = i2s_dummy_buffer[0];
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uint16_t dataVal = 1;
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for (uint16_t cnt = 0; cnt < AUDIO_SAMPLE_RATE/1000; cnt++)
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{
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uint16_t * p_buff = i2s_dummy_buffer[cnt]; // 2 bytes per sample
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dataVal = 1;
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for (uint16_t cnt2 = 0; cnt2 < AUDIO_SAMPLE_RATE/1000; cnt2++)
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{
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for (uint8_t cnt3 = 0; cnt3 < CFG_TUD_AUDIO_FUNC_1_CHANNEL_PER_FIFO_TX; cnt3++)
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{
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*p_buff++ = dataVal;
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}
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dataVal++;
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}
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// CH0 saw wave
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*p_buff++ = dataVal;
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// CH1 inverted saw wave
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*p_buff++ = 60 + AUDIO_SAMPLE_RATE/1000 - dataVal;
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dataVal++;
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}
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p_buff = i2s_dummy_buffer[1];
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for (uint16_t cnt = 0; cnt < AUDIO_SAMPLE_RATE/1000; cnt++)
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{
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// CH3 square wave
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*p_buff++ = cnt < (AUDIO_SAMPLE_RATE/1000/2) ? 120:170;
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// CH4 sinus wave
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q15_t t = 0x7FFF * cnt / (AUDIO_SAMPLE_RATE/1000);
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*p_buff++ = arm_sin_q15(t) / 1300 + 200;
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}
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return true;
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}
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@ -103,6 +103,7 @@ extern "C" {
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//--------------------------------------------------------------------
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// Have a look into audio_device.h for all configurations
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#define CFG_TUD_AUDIO_FUNC_1_SAMPLE_RATE 48000
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#define CFG_TUD_AUDIO_FUNC_1_DESC_LEN TUD_AUDIO_MIC_FOUR_CH_DESC_LEN
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@ -112,7 +113,7 @@ extern "C" {
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#define CFG_TUD_AUDIO_ENABLE_EP_IN 1
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#define CFG_TUD_AUDIO_FUNC_1_N_BYTES_PER_SAMPLE_TX 2 // This value is not required by the driver, it parses this information from the descriptor once the alternate interface is set by the host - we use it for the setup
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#define CFG_TUD_AUDIO_FUNC_1_N_CHANNELS_TX 4 // This value is not required by the driver, it parses this information from the descriptor once the alternate interface is set by the host - we use it for the setup
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#define CFG_TUD_AUDIO_EP_SZ_IN (48 + 1) * CFG_TUD_AUDIO_FUNC_1_N_BYTES_PER_SAMPLE_TX * CFG_TUD_AUDIO_FUNC_1_N_CHANNELS_TX // 48 Samples (48 kHz) x 2 Bytes/Sample x CFG_TUD_AUDIO_N_CHANNELS_TX Channels - the Windows driver always needs an extra sample per channel of space more, otherwise it complains... found by trial and error
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#define CFG_TUD_AUDIO_EP_SZ_IN TUD_AUDIO_EP_SIZE(CFG_TUD_AUDIO_FUNC_1_SAMPLE_RATE, CFG_TUD_AUDIO_FUNC_1_N_BYTES_PER_SAMPLE_TX, CFG_TUD_AUDIO_FUNC_1_N_CHANNELS_TX)
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#define CFG_TUD_AUDIO_FUNC_1_EP_IN_SZ_MAX CFG_TUD_AUDIO_EP_SZ_IN
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#define CFG_TUD_AUDIO_FUNC_1_EP_IN_SW_BUF_SZ CFG_TUD_AUDIO_EP_SZ_IN
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