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Rename files from "mal" to "ma".
This commit is contained in:
@@ -1,637 +0,0 @@
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// Consider this code public domain.
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//
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// This is some research into a ring buffer implementation. Requirements:
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// - Lock free (assuming single producer, single consumer)
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// - Support for interleaved and deinterleaved streams
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// - Must allow the caller to allocate their own block of memory
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// - Buffers allocated internally must be aligned to MA_SIMD_ALIGNMENT
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// USAGE
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//
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// - Call ma_rb_init() to initialize a simple buffer, with an optional pre-allocated buffer. If you pass in NULL
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// for the pre-allocated buffer, it will be allocated for you and free()'d in ma_rb_uninit(). If you pass in
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// your own pre-allocated buffer, free()-ing is left to you.
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//
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// - Call ma_rb_init_ex() if you need a deinterleaved buffer. The data for each sub-buffer is offset from each
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// other based on the stride. Use ma_rb_get_subbuffer_stride(), ma_rb_get_subbuffer_offset() and
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// ma_rb_get_subbuffer_ptr() to manage your sub-buffers.
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//
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// - Use ma_rb_acquire_read() and ma_rb_acquire_write() to retrieve a pointer to a section of the ring buffer.
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// You specify the number of bytes you need, and on output it will set to what was actually acquired. If the
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// read or write pointer is positioned such that the number of bytes requested will require a loop, it will be
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// clamped to the end of the buffer. Therefore, the number of bytes you're given may be less than the number
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// you requested.
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//
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// - After calling ma_rb_acquire_read/write(), you do your work on the buffer and then "commit" it with
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// ma_rb_commit_read/write(). This is where the read/write pointers are updated. When you commit you need to
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// pass in the buffer that was returned by the earlier call to ma_rb_acquire_read/write() and is only used
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// for validation. The number of bytes passed to ma_rb_commit_read/write() is what's used to increment the
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// pointers.
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//
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// - If you want to correct for drift between the write pointer and the read pointer you can use a combination
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// of ma_rb_pointer_distance(), ma_rb_seek_read() and ma_rb_seek_write(). Note that you can only move the
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// pointers forward, and you should only move the read pointer forward via the consumer thread, and the write
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// pointer forward by the producer thread. If there is too much space between the pointers, move the read
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// pointer forward. If there is too little space between the pointers, move the write pointer forward.
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// NOTES
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//
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// - Probably buggy.
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// - Still experimenting with the API. Open to suggestions.
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// - Thread safety depends on a single producer, single consumer model. Only one thread is allowed to write, and
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// only one thread is allowed to read. The producer is the only one allowed to move the write pointer, and the
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// consumer is the only one allowed to move the read pointer.
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// - Thread safety not fully tested - may even be completely broken.
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// - Operates on bytes. May end up adding to higher level helpers for doing everything per audio frame.
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// - Maximum buffer size is 0x7FFFFFFF-(MA_SIMD_ALIGNMENT-1) because of reasons.
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#ifndef ma_ring_buffer_h
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#define ma_ring_buffer_h
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typedef struct
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{
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void* pBuffer;
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ma_uint32 subbufferSizeInBytes;
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ma_uint32 subbufferCount;
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ma_uint32 subbufferStrideInBytes;
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volatile ma_uint32 encodedReadOffset; /* Most significant bit is the loop flag. Lower 31 bits contains the actual offset in bytes. */
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volatile ma_uint32 encodedWriteOffset; /* Most significant bit is the loop flag. Lower 31 bits contains the actual offset in bytes. */
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ma_bool32 ownsBuffer : 1; /* Used to know whether or not miniaudio is responsible for free()-ing the buffer. */
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ma_bool32 clearOnWriteAcquire : 1; /* When set, clears the acquired write buffer before returning from ma_rb_acquire_write(). */
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} ma_rb;
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ma_result ma_rb_init_ex(size_t subbufferSizeInBytes, size_t subbufferCount, size_t subbufferStrideInBytes, void* pOptionalPreallocatedBuffer, ma_rb* pRB);
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ma_result ma_rb_init(size_t bufferSizeInBytes, void* pOptionalPreallocatedBuffer, ma_rb* pRB);
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void ma_rb_uninit(ma_rb* pRB);
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ma_result ma_rb_acquire_read(ma_rb* pRB, size_t* pSizeInBytes, void** ppBufferOut);
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ma_result ma_rb_commit_read(ma_rb* pRB, size_t sizeInBytes, void* pBufferOut);
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ma_result ma_rb_acquire_write(ma_rb* pRB, size_t* pSizeInBytes, void** ppBufferOut);
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ma_result ma_rb_commit_write(ma_rb* pRB, size_t sizeInBytes, void* pBufferOut);
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ma_result ma_rb_seek_read(ma_rb* pRB, size_t offsetInBytes);
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ma_result ma_rb_seek_write(ma_rb* pRB, size_t offsetInBytes);
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ma_int32 ma_rb_pointer_distance(ma_rb* pRB); /* Returns the distance between the write pointer and the read pointer. Should never be negative for a correct program. */
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size_t ma_rb_get_subbuffer_stride(ma_rb* pRB);
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size_t ma_rb_get_subbuffer_offset(ma_rb* pRB, size_t subbufferIndex);
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void* ma_rb_get_subbuffer_ptr(ma_rb* pRB, size_t subbufferIndex, void* pBuffer);
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typedef struct
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{
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ma_rb rb;
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ma_format format;
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ma_uint32 channels;
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} ma_pcm_rb;
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ma_result ma_pcm_rb_init_ex(ma_format format, ma_uint32 channels, size_t subbufferSizeInFrames, size_t subbufferCount, size_t subbufferStrideInFrames, void* pOptionalPreallocatedBuffer, ma_pcm_rb* pRB);
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ma_result ma_pcm_rb_init(ma_format format, ma_uint32 channels, size_t bufferSizeInFrames, void* pOptionalPreallocatedBuffer, ma_pcm_rb* pRB);
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void ma_pcm_rb_uninit(ma_pcm_rb* pRB);
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ma_result ma_pcm_rb_acquire_read(ma_pcm_rb* pRB, size_t* pSizeInFrames, void** ppBufferOut);
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ma_result ma_pcm_rb_commit_read(ma_pcm_rb* pRB, size_t sizeInFrames, void* pBufferOut);
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ma_result ma_pcm_rb_acquire_write(ma_pcm_rb* pRB, size_t* pSizeInFrames, void** ppBufferOut);
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ma_result ma_pcm_rb_commit_write(ma_pcm_rb* pRB, size_t sizeInFrames, void* pBufferOut);
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ma_result ma_pcm_rb_seek_read(ma_pcm_rb* pRB, size_t offsetInFrames);
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ma_result ma_pcm_rb_seek_write(ma_pcm_rb* pRB, size_t offsetInFrames);
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ma_int32 ma_pcm_rb_pointer_disance(ma_pcm_rb* pRB); /* Return value is in frames. */
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size_t ma_pcm_rb_get_subbuffer_stride(ma_pcm_rb* pRB);
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size_t ma_pcm_rb_get_subbuffer_offset(ma_pcm_rb* pRB, size_t subbufferIndex);
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void* ma_pcm_rb_get_subbuffer_ptr(ma_pcm_rb* pRB, size_t subbufferIndex, void* pBuffer);
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#endif // ma_ring_buffer_h
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#ifdef MINIAUDIO_IMPLEMENTATION
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MA_INLINE ma_uint32 ma_rb__extract_offset_in_bytes(ma_uint32 encodedOffset)
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{
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return encodedOffset & 0x7FFFFFFF;
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}
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MA_INLINE ma_uint32 ma_rb__extract_offset_loop_flag(ma_uint32 encodedOffset)
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{
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return encodedOffset & 0x80000000;
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}
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MA_INLINE void* ma_rb__get_read_ptr(ma_rb* pRB)
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{
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ma_assert(pRB != NULL);
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return ma_offset_ptr(pRB->pBuffer, ma_rb__extract_offset_in_bytes(pRB->encodedReadOffset));
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}
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MA_INLINE void* ma_rb__get_write_ptr(ma_rb* pRB)
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{
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ma_assert(pRB != NULL);
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return ma_offset_ptr(pRB->pBuffer, ma_rb__extract_offset_in_bytes(pRB->encodedWriteOffset));
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}
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MA_INLINE ma_uint32 ma_rb__construct_offset(ma_uint32 offsetInBytes, ma_uint32 offsetLoopFlag)
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{
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return offsetLoopFlag | offsetInBytes;
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}
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MA_INLINE void ma_rb__deconstruct_offset(ma_uint32 encodedOffset, ma_uint32* pOffsetInBytes, ma_uint32* pOffsetLoopFlag)
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{
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ma_assert(pOffsetInBytes != NULL);
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ma_assert(pOffsetLoopFlag != NULL);
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*pOffsetInBytes = ma_rb__extract_offset_in_bytes(encodedOffset);
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*pOffsetLoopFlag = ma_rb__extract_offset_loop_flag(encodedOffset);
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}
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ma_result ma_rb_init_ex(size_t subbufferSizeInBytes, size_t subbufferCount, size_t subbufferStrideInBytes, void* pOptionalPreallocatedBuffer, ma_rb* pRB)
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{
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if (pRB == NULL) {
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return MA_INVALID_ARGS;
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}
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if (subbufferSizeInBytes == 0 || subbufferCount == 0) {
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return MA_INVALID_ARGS;
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}
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const ma_uint32 maxSubBufferSize = 0x7FFFFFFF - (MA_SIMD_ALIGNMENT-1);
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if (subbufferSizeInBytes > maxSubBufferSize) {
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return MA_INVALID_ARGS; // Maximum buffer size is ~2GB. The most significant bit is a flag for use internally.
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}
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ma_zero_object(pRB);
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pRB->subbufferSizeInBytes = (ma_uint32)subbufferSizeInBytes;
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pRB->subbufferCount = (ma_uint32)subbufferCount;
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if (pOptionalPreallocatedBuffer != NULL) {
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pRB->subbufferStrideInBytes = (ma_uint32)subbufferStrideInBytes;
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pRB->pBuffer = pOptionalPreallocatedBuffer;
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} else {
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// Here is where we allocate our own buffer. We always want to align this to MA_SIMD_ALIGNMENT for future SIMD optimization opportunity. To do this
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// we need to make sure the stride is a multiple of MA_SIMD_ALIGNMENT.
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pRB->subbufferStrideInBytes = (pRB->subbufferSizeInBytes + (MA_SIMD_ALIGNMENT-1)) & ~MA_SIMD_ALIGNMENT;
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size_t bufferSizeInBytes = (size_t)pRB->subbufferCount*pRB->subbufferStrideInBytes;
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pRB->pBuffer = ma_aligned_malloc(bufferSizeInBytes, MA_SIMD_ALIGNMENT);
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if (pRB->pBuffer == NULL) {
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return MA_OUT_OF_MEMORY;
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}
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ma_zero_memory(pRB->pBuffer, bufferSizeInBytes);
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pRB->ownsBuffer = MA_TRUE;
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}
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return MA_SUCCESS;
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}
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ma_result ma_rb_init(size_t bufferSizeInBytes, void* pOptionalPreallocatedBuffer, ma_rb* pRB)
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{
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return ma_rb_init_ex(bufferSizeInBytes, 1, 0, pOptionalPreallocatedBuffer, pRB);
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}
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void ma_rb_uninit(ma_rb* pRB)
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{
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if (pRB == NULL) {
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return;
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}
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if (pRB->ownsBuffer) {
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ma_free(pRB->pBuffer);
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}
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}
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ma_result ma_rb_acquire_read(ma_rb* pRB, size_t* pSizeInBytes, void** ppBufferOut)
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{
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if (pRB == NULL || pSizeInBytes == NULL || ppBufferOut == NULL) {
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return MA_INVALID_ARGS;
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}
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// The returned buffer should never move ahead of the write pointer.
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ma_uint32 writeOffset = pRB->encodedWriteOffset;
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ma_uint32 writeOffsetInBytes;
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ma_uint32 writeOffsetLoopFlag;
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ma_rb__deconstruct_offset(writeOffset, &writeOffsetInBytes, &writeOffsetLoopFlag);
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ma_uint32 readOffset = pRB->encodedReadOffset;
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ma_uint32 readOffsetInBytes;
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ma_uint32 readOffsetLoopFlag;
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ma_rb__deconstruct_offset(readOffset, &readOffsetInBytes, &readOffsetLoopFlag);
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// The number of bytes available depends on whether or not the read and write pointers are on the same loop iteration. If so, we
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// can only read up to the write pointer. If not, we can only read up to the end of the buffer.
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size_t bytesAvailable;
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if (readOffsetLoopFlag == writeOffsetLoopFlag) {
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bytesAvailable = writeOffsetInBytes - readOffsetInBytes;
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} else {
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bytesAvailable = pRB->subbufferSizeInBytes - readOffsetInBytes;
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}
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size_t bytesRequested = *pSizeInBytes;
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if (bytesRequested > bytesAvailable) {
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bytesRequested = bytesAvailable;
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}
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*pSizeInBytes = bytesRequested;
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(*ppBufferOut) = ma_rb__get_read_ptr(pRB);
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return MA_SUCCESS;
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}
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ma_result ma_rb_commit_read(ma_rb* pRB, size_t sizeInBytes, void* pBufferOut)
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{
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if (pRB == NULL) {
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return MA_INVALID_ARGS;
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}
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// Validate the buffer.
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if (pBufferOut != ma_rb__get_read_ptr(pRB)) {
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return MA_INVALID_ARGS;
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}
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ma_uint32 readOffset = pRB->encodedReadOffset;
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ma_uint32 readOffsetInBytes;
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ma_uint32 readOffsetLoopFlag;
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ma_rb__deconstruct_offset(readOffset, &readOffsetInBytes, &readOffsetLoopFlag);
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// Check that sizeInBytes is correct. It should never go beyond the end of the buffer.
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ma_uint32 newReadOffsetInBytes = (ma_uint32)(readOffsetInBytes + sizeInBytes);
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if (newReadOffsetInBytes > pRB->subbufferSizeInBytes) {
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return MA_INVALID_ARGS; // <-- sizeInBytes will cause the read offset to overflow.
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}
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// Move the read pointer back to the start if necessary.
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ma_uint32 newReadOffsetLoopFlag = readOffsetLoopFlag;
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if (newReadOffsetInBytes == pRB->subbufferSizeInBytes) {
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newReadOffsetInBytes = 0;
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newReadOffsetLoopFlag ^= 0x80000000;
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}
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ma_atomic_exchange_32(&pRB->encodedReadOffset, ma_rb__construct_offset(newReadOffsetLoopFlag, newReadOffsetInBytes));
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return MA_SUCCESS;
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}
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ma_result ma_rb_acquire_write(ma_rb* pRB, size_t* pSizeInBytes, void** ppBufferOut)
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{
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if (pRB == NULL || pSizeInBytes == NULL || ppBufferOut == NULL) {
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return MA_INVALID_ARGS;
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}
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// The returned buffer should never overtake the read buffer.
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ma_uint32 readOffset = pRB->encodedReadOffset;
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ma_uint32 readOffsetInBytes;
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ma_uint32 readOffsetLoopFlag;
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ma_rb__deconstruct_offset(readOffset, &readOffsetInBytes, &readOffsetLoopFlag);
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ma_uint32 writeOffset = pRB->encodedWriteOffset;
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ma_uint32 writeOffsetInBytes;
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ma_uint32 writeOffsetLoopFlag;
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ma_rb__deconstruct_offset(writeOffset, &writeOffsetInBytes, &writeOffsetLoopFlag);
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// In the case of writing, if the write pointer and the read pointer are on the same loop iteration we can only
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// write up to the end of the buffer. Otherwise we can only write up to the read pointer. The write pointer should
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// never overtake the read pointer.
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size_t bytesAvailable;
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if (writeOffsetLoopFlag == readOffsetLoopFlag) {
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bytesAvailable = pRB->subbufferSizeInBytes - writeOffsetInBytes;
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} else {
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bytesAvailable = readOffsetInBytes - writeOffsetInBytes;
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}
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size_t bytesRequested = *pSizeInBytes;
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if (bytesRequested > bytesAvailable) {
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bytesRequested = bytesAvailable;
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}
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*pSizeInBytes = bytesRequested;
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*ppBufferOut = ma_rb__get_write_ptr(pRB);
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// Clear the buffer if desired.
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if (pRB->clearOnWriteAcquire) {
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ma_zero_memory(*ppBufferOut, *pSizeInBytes);
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}
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return MA_SUCCESS;
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}
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ma_result ma_rb_commit_write(ma_rb* pRB, size_t sizeInBytes, void* pBufferOut)
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{
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if (pRB == NULL) {
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return MA_INVALID_ARGS;
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}
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// Validate the buffer.
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if (pBufferOut != ma_rb__get_write_ptr(pRB)) {
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return MA_INVALID_ARGS;
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}
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ma_uint32 writeOffset = pRB->encodedWriteOffset;
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ma_uint32 writeOffsetInBytes;
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ma_uint32 writeOffsetLoopFlag;
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ma_rb__deconstruct_offset(writeOffset, &writeOffsetInBytes, &writeOffsetLoopFlag);
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// Check that sizeInBytes is correct. It should never go beyond the end of the buffer.
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ma_uint32 newWriteOffsetInBytes = (ma_uint32)(writeOffsetInBytes + sizeInBytes);
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if (newWriteOffsetInBytes > pRB->subbufferSizeInBytes) {
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return MA_INVALID_ARGS; // <-- sizeInBytes will cause the read offset to overflow.
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}
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// Move the read pointer back to the start if necessary.
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ma_uint32 newWriteOffsetLoopFlag = writeOffsetLoopFlag;
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if (newWriteOffsetInBytes == pRB->subbufferSizeInBytes) {
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newWriteOffsetInBytes = 0;
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newWriteOffsetLoopFlag ^= 0x80000000;
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}
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ma_atomic_exchange_32(&pRB->encodedWriteOffset, ma_rb__construct_offset(newWriteOffsetLoopFlag, newWriteOffsetInBytes));
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return MA_SUCCESS;
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}
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ma_result ma_rb_seek_read(ma_rb* pRB, size_t offsetInBytes)
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{
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if (pRB == NULL || offsetInBytes > pRB->subbufferSizeInBytes) {
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return MA_INVALID_ARGS;
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}
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ma_uint32 readOffset = pRB->encodedReadOffset;
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ma_uint32 readOffsetInBytes;
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ma_uint32 readOffsetLoopFlag;
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ma_rb__deconstruct_offset(readOffset, &readOffsetInBytes, &readOffsetLoopFlag);
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ma_uint32 writeOffset = pRB->encodedWriteOffset;
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ma_uint32 writeOffsetInBytes;
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ma_uint32 writeOffsetLoopFlag;
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ma_rb__deconstruct_offset(writeOffset, &writeOffsetInBytes, &writeOffsetLoopFlag);
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ma_uint32 newReadOffsetInBytes = readOffsetInBytes;
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ma_uint32 newReadOffsetLoopFlag = readOffsetLoopFlag;
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// We cannot go past the write buffer.
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if (readOffsetLoopFlag == writeOffsetLoopFlag) {
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if ((readOffsetInBytes + offsetInBytes) > writeOffsetInBytes) {
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newReadOffsetInBytes = writeOffsetInBytes;
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} else {
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newReadOffsetInBytes = (ma_uint32)(readOffsetInBytes + offsetInBytes);
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}
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} else {
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// May end up looping.
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if ((readOffsetInBytes + offsetInBytes) >= pRB->subbufferSizeInBytes) {
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newReadOffsetInBytes = (ma_uint32)(readOffsetInBytes + offsetInBytes) - pRB->subbufferSizeInBytes;
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newReadOffsetLoopFlag ^= 0x80000000; /* <-- Looped. */
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} else {
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newReadOffsetInBytes = (ma_uint32)(readOffsetInBytes + offsetInBytes);
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}
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}
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ma_atomic_exchange_32(&pRB->encodedReadOffset, ma_rb__construct_offset(newReadOffsetInBytes, newReadOffsetLoopFlag));
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return MA_SUCCESS;
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}
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ma_result ma_rb_seek_write(ma_rb* pRB, size_t offsetInBytes)
|
||||
{
|
||||
if (pRB == NULL) {
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return MA_INVALID_ARGS;
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}
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ma_uint32 readOffset = pRB->encodedReadOffset;
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ma_uint32 readOffsetInBytes;
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ma_uint32 readOffsetLoopFlag;
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ma_rb__deconstruct_offset(readOffset, &readOffsetInBytes, &readOffsetLoopFlag);
|
||||
|
||||
ma_uint32 writeOffset = pRB->encodedWriteOffset;
|
||||
ma_uint32 writeOffsetInBytes;
|
||||
ma_uint32 writeOffsetLoopFlag;
|
||||
ma_rb__deconstruct_offset(writeOffset, &writeOffsetInBytes, &writeOffsetLoopFlag);
|
||||
|
||||
ma_uint32 newWriteOffsetInBytes = writeOffsetInBytes;
|
||||
ma_uint32 newWriteOffsetLoopFlag = writeOffsetLoopFlag;
|
||||
|
||||
// We cannot go past the write buffer.
|
||||
if (readOffsetLoopFlag == writeOffsetLoopFlag) {
|
||||
// May end up looping.
|
||||
if ((writeOffsetInBytes + offsetInBytes) >= pRB->subbufferSizeInBytes) {
|
||||
newWriteOffsetInBytes = (ma_uint32)(writeOffsetInBytes + offsetInBytes) - pRB->subbufferSizeInBytes;
|
||||
newWriteOffsetLoopFlag ^= 0x80000000; /* <-- Looped. */
|
||||
} else {
|
||||
newWriteOffsetInBytes = (ma_uint32)(writeOffsetInBytes + offsetInBytes);
|
||||
}
|
||||
} else {
|
||||
if ((writeOffsetInBytes + offsetInBytes) > readOffsetInBytes) {
|
||||
newWriteOffsetInBytes = readOffsetInBytes;
|
||||
} else {
|
||||
newWriteOffsetInBytes = (ma_uint32)(writeOffsetInBytes + offsetInBytes);
|
||||
}
|
||||
}
|
||||
|
||||
ma_atomic_exchange_32(&pRB->encodedWriteOffset, ma_rb__construct_offset(newWriteOffsetInBytes, newWriteOffsetLoopFlag));
|
||||
return MA_SUCCESS;
|
||||
}
|
||||
|
||||
ma_int32 ma_rb_pointer_distance(ma_rb* pRB)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
ma_uint32 readOffset = pRB->encodedReadOffset;
|
||||
ma_uint32 readOffsetInBytes;
|
||||
ma_uint32 readOffsetLoopFlag;
|
||||
ma_rb__deconstruct_offset(readOffset, &readOffsetInBytes, &readOffsetLoopFlag);
|
||||
|
||||
ma_uint32 writeOffset = pRB->encodedWriteOffset;
|
||||
ma_uint32 writeOffsetInBytes;
|
||||
ma_uint32 writeOffsetLoopFlag;
|
||||
ma_rb__deconstruct_offset(writeOffset, &writeOffsetInBytes, &writeOffsetLoopFlag);
|
||||
|
||||
if (readOffsetLoopFlag == writeOffsetLoopFlag) {
|
||||
return writeOffsetInBytes - readOffsetInBytes;
|
||||
} else {
|
||||
return writeOffsetInBytes + (pRB->subbufferSizeInBytes - readOffsetInBytes);
|
||||
}
|
||||
}
|
||||
|
||||
size_t ma_rb_get_subbuffer_stride(ma_rb* pRB)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
if (pRB->subbufferStrideInBytes == 0) {
|
||||
return (size_t)pRB->subbufferSizeInBytes;
|
||||
}
|
||||
|
||||
return (size_t)pRB->subbufferStrideInBytes;
|
||||
}
|
||||
|
||||
size_t ma_rb_get_subbuffer_offset(ma_rb* pRB, size_t subbufferIndex)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
return subbufferIndex * ma_rb_get_subbuffer_stride(pRB);
|
||||
}
|
||||
|
||||
void* ma_rb_get_subbuffer_ptr(ma_rb* pRB, size_t subbufferIndex, void* pBuffer)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return NULL;
|
||||
}
|
||||
|
||||
return ma_offset_ptr(pBuffer, ma_rb_get_subbuffer_offset(pRB, subbufferIndex));
|
||||
}
|
||||
|
||||
|
||||
/* ma_pcm_rb */
|
||||
|
||||
ma_uint32 ma_pcm_rb_get_bpf(ma_pcm_rb* pRB)
|
||||
{
|
||||
ma_assert(pRB != NULL);
|
||||
|
||||
return ma_get_bytes_per_frame(pRB->format, pRB->channels);
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_init_ex(ma_format format, ma_uint32 channels, size_t subbufferSizeInFrames, size_t subbufferCount, size_t subbufferStrideInFrames, void* pOptionalPreallocatedBuffer, ma_pcm_rb* pRB)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
ma_zero_object(pRB);
|
||||
|
||||
ma_uint32 bpf = ma_get_bytes_per_frame(format, channels);
|
||||
if (bpf == 0) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
ma_result result = ma_rb_init_ex(subbufferSizeInFrames*bpf, subbufferCount, subbufferStrideInFrames*bpf, pOptionalPreallocatedBuffer, &pRB->rb);
|
||||
if (result != MA_SUCCESS) {
|
||||
return result;
|
||||
}
|
||||
|
||||
pRB->format = format;
|
||||
pRB->channels = channels;
|
||||
|
||||
return MA_SUCCESS;
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_init(ma_format format, ma_uint32 channels, size_t bufferSizeInFrames, void* pOptionalPreallocatedBuffer, ma_pcm_rb* pRB)
|
||||
{
|
||||
return ma_pcm_rb_init_ex(format, channels, bufferSizeInFrames, 1, 0, pOptionalPreallocatedBuffer, pRB);
|
||||
}
|
||||
|
||||
void ma_pcm_rb_uninit(ma_pcm_rb* pRB)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return;
|
||||
}
|
||||
|
||||
ma_rb_uninit(&pRB->rb);
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_acquire_read(ma_pcm_rb* pRB, size_t* pSizeInFrames, void** ppBufferOut)
|
||||
{
|
||||
size_t sizeInBytes;
|
||||
ma_result result;
|
||||
|
||||
if (pRB == NULL || pSizeInFrames == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
sizeInBytes = *pSizeInFrames * ma_pcm_rb_get_bpf(pRB);
|
||||
|
||||
result = ma_rb_acquire_read(&pRB->rb, &sizeInBytes, ppBufferOut);
|
||||
if (result != MA_SUCCESS) {
|
||||
return result;
|
||||
}
|
||||
|
||||
*pSizeInFrames = sizeInBytes / ma_pcm_rb_get_bpf(pRB);
|
||||
return MA_SUCCESS;
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_commit_read(ma_pcm_rb* pRB, size_t sizeInFrames, void* pBufferOut)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
return ma_rb_commit_read(&pRB->rb, sizeInFrames * ma_pcm_rb_get_bpf(pRB), pBufferOut);
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_acquire_write(ma_pcm_rb* pRB, size_t* pSizeInFrames, void** ppBufferOut)
|
||||
{
|
||||
size_t sizeInBytes;
|
||||
ma_result result;
|
||||
|
||||
if (pRB == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
sizeInBytes = *pSizeInFrames * ma_pcm_rb_get_bpf(pRB);
|
||||
|
||||
result = ma_rb_acquire_write(&pRB->rb, &sizeInBytes, ppBufferOut);
|
||||
if (result != MA_SUCCESS) {
|
||||
return result;
|
||||
}
|
||||
|
||||
*pSizeInFrames = sizeInBytes / ma_pcm_rb_get_bpf(pRB);
|
||||
return MA_SUCCESS;
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_commit_write(ma_pcm_rb* pRB, size_t sizeInFrames, void* pBufferOut)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
return ma_rb_commit_write(&pRB->rb, sizeInFrames * ma_pcm_rb_get_bpf(pRB), pBufferOut);
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_seek_read(ma_pcm_rb* pRB, size_t offsetInFrames)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
return ma_rb_seek_read(&pRB->rb, offsetInFrames * ma_pcm_rb_get_bpf(pRB));
|
||||
}
|
||||
|
||||
ma_result ma_pcm_rb_seek_write(ma_pcm_rb* pRB, size_t offsetInFrames)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
return ma_rb_seek_write(&pRB->rb, offsetInFrames * ma_pcm_rb_get_bpf(pRB));
|
||||
}
|
||||
|
||||
ma_int32 ma_pcm_rb_pointer_disance(ma_pcm_rb* pRB)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return MA_INVALID_ARGS;
|
||||
}
|
||||
|
||||
return ma_rb_pointer_distance(&pRB->rb) / ma_pcm_rb_get_bpf(pRB);
|
||||
}
|
||||
|
||||
size_t ma_pcm_rb_get_subbuffer_stride(ma_pcm_rb* pRB)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
return ma_rb_get_subbuffer_stride(&pRB->rb) / ma_pcm_rb_get_bpf(pRB);
|
||||
}
|
||||
|
||||
size_t ma_pcm_rb_get_subbuffer_offset(ma_pcm_rb* pRB, size_t subbufferIndex)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return 0;
|
||||
}
|
||||
|
||||
return ma_rb_get_subbuffer_offset(&pRB->rb, subbufferIndex) / ma_pcm_rb_get_bpf(pRB);
|
||||
}
|
||||
|
||||
void* ma_pcm_rb_get_subbuffer_ptr(ma_pcm_rb* pRB, size_t subbufferIndex, void* pBuffer)
|
||||
{
|
||||
if (pRB == NULL) {
|
||||
return NULL;
|
||||
}
|
||||
|
||||
return ma_rb_get_subbuffer_ptr(&pRB->rb, subbufferIndex, pBuffer);
|
||||
}
|
||||
|
||||
#endif // MINIAUDIO_IMPLEMENTATION
|
||||
Reference in New Issue
Block a user