#ifndef __UT_ROBOT_WAV_READER_HPP__ #define __UT_ROBOT_WAV_READER_HPP__ struct WaveHeader { void SeekToDataChunk(std::istream &is) { while (is && subchunk2_id != 0x61746164) { is.seekg(subchunk2_size, std::istream::cur); is.read(reinterpret_cast(&subchunk2_id), sizeof(int32_t)); is.read(reinterpret_cast(&subchunk2_size), sizeof(int32_t)); } } int32_t chunk_id; int32_t chunk_size; int32_t format; int32_t subchunk1_id; int32_t subchunk1_size; int16_t audio_format; int16_t num_channels; int32_t sample_rate; int32_t byte_rate; int16_t block_align; int16_t bits_per_sample; int32_t subchunk2_id; // a tag of this chunk int32_t subchunk2_size; // size of subchunk2 }; static_assert(sizeof(WaveHeader) == 44); std::vector ReadWaveImpl(std::istream &is, int32_t *sampling_rate, int8_t *channelCount, bool *is_ok) { WaveHeader header{}; is.read(reinterpret_cast(&header.chunk_id), sizeof(header.chunk_id)); // F F I R if (header.chunk_id != 0x46464952) { printf("Expected chunk_id RIFF. Given: 0x%08x\n", header.chunk_id); *is_ok = false; return {}; } is.read(reinterpret_cast(&header.chunk_size), sizeof(header.chunk_size)); is.read(reinterpret_cast(&header.format), sizeof(header.format)); // E V A W if (header.format != 0x45564157) { printf("Expected format WAVE. Given: 0x%08x\n", header.format); *is_ok = false; return {}; } is.read(reinterpret_cast(&header.subchunk1_id), sizeof(header.subchunk1_id)); is.read(reinterpret_cast(&header.subchunk1_size), sizeof(header.subchunk1_size)); if (header.subchunk1_id == 0x4b4e554a) { // skip junk padding is.seekg(header.subchunk1_size, std::istream::cur); is.read(reinterpret_cast(&header.subchunk1_id), sizeof(header.subchunk1_id)); is.read(reinterpret_cast(&header.subchunk1_size), sizeof(header.subchunk1_size)); } if (header.subchunk1_id != 0x20746d66) { printf("Expected subchunk1_id 0x20746d66. Given: 0x%08x\n", header.subchunk1_id); *is_ok = false; return {}; } if (header.subchunk1_size != 16 && header.subchunk1_size != 18) { // 16 for PCM printf("Expected subchunk1_size 16. Given: %d\n", header.subchunk1_size); *is_ok = false; return {}; } is.read(reinterpret_cast(&header.audio_format), sizeof(header.audio_format)); if (header.audio_format != 1) { // 1 for PCM printf("Expected audio_format 1. Given: %d\n", header.audio_format); *is_ok = false; return {}; } is.read(reinterpret_cast(&header.num_channels), sizeof(header.num_channels)); *channelCount = (int8_t)header.num_channels; is.read(reinterpret_cast(&header.sample_rate), sizeof(header.sample_rate)); is.read(reinterpret_cast(&header.byte_rate), sizeof(header.byte_rate)); is.read(reinterpret_cast(&header.block_align), sizeof(header.block_align)); is.read(reinterpret_cast(&header.bits_per_sample), sizeof(header.bits_per_sample)); if (header.byte_rate != (header.sample_rate * header.num_channels * header.bits_per_sample / 8)) { printf("Incorrect byte rate: %d. Expected: %d", header.byte_rate, (header.sample_rate * header.num_channels * header.bits_per_sample / 8)); *is_ok = false; return {}; } if (header.block_align != (header.num_channels * header.bits_per_sample / 8)) { printf("Incorrect block align: %d. Expected: %d\n", header.block_align, (header.num_channels * header.bits_per_sample / 8)); *is_ok = false; return {}; } if (header.bits_per_sample != 16) { // we support only 16 bits per sample printf("Expected bits_per_sample 16. Given: %d\n", header.bits_per_sample); *is_ok = false; return {}; } if (header.subchunk1_size == 18) { int16_t extra_size = -1; is.read(reinterpret_cast(&extra_size), sizeof(int16_t)); if (extra_size != 0) { printf( "Extra size should be 0 for wave from NAudio. Current extra size " "%d\n", extra_size); *is_ok = false; return {}; } } is.read(reinterpret_cast(&header.subchunk2_id), sizeof(header.subchunk2_id)); is.read(reinterpret_cast(&header.subchunk2_size), sizeof(header.subchunk2_size)); header.SeekToDataChunk(is); if (!is) { *is_ok = false; return {}; } *sampling_rate = header.sample_rate; // header.subchunk2_size contains the number of bytes in the data. // As we assume each sample contains two bytes, so it is divided by 2 here std::vector samples(header.subchunk2_size / 2); is.read(reinterpret_cast(samples.data()), header.subchunk2_size); if (!is) { *is_ok = false; return {}; } std::vector ans(samples.size() * 2); for (int32_t i = 0; i != static_cast(samples.size()); ++i) { ans[i * 2] = samples[i] & 0xFF; ans[i * 2 + 1] = (samples[i] >> 8) & 0xFF; } *is_ok = true; return ans; } std::vector ReadWave(const std::string &filename, int32_t *sampling_rate, int8_t *channelCount, bool *is_ok) { std::ifstream is(filename, std::ifstream::binary); auto samples = ReadWaveImpl(is, sampling_rate, channelCount, is_ok); return samples; } bool WriteWave(const std::string &filename, int32_t sampling_rate, const int16_t *samples, int32_t n, uint8_t num_channels) { WaveHeader header{}; header.chunk_id = 0x46464952; // FFIR header.format = 0x45564157; // EVAW header.subchunk1_id = 0x20746d66; // "fmt " header.subchunk1_size = 16; // 16 for PCM header.audio_format = 1; // PCM =1 int32_t bits_per_sample = 16; // int16_t header.num_channels = num_channels; header.sample_rate = sampling_rate; header.byte_rate = sampling_rate * num_channels * bits_per_sample / 8; header.block_align = num_channels * bits_per_sample / 8; header.bits_per_sample = bits_per_sample; header.subchunk2_id = 0x61746164; // atad header.subchunk2_size = n * num_channels * bits_per_sample / 8; header.chunk_size = 36 + header.subchunk2_size; std::vector samples_int16(n * num_channels); for (int32_t i = 0; i != n * num_channels; ++i) { samples_int16[i] = samples[i]; } std::ofstream os(filename, std::ios::binary); if (!os) { printf("Failed to create %s", filename.c_str()); return false; } os.write(reinterpret_cast(&header), sizeof(header)); os.write(reinterpret_cast(samples_int16.data()), samples_int16.size() * sizeof(int16_t)); if (!os) { printf("Write %s failed", filename.c_str()); return false; } return true; } #endif