| Index: media/base/video_frame.cc
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| diff --git a/media/base/video_frame.cc b/media/base/video_frame.cc
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| new file mode 100644
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| index 0000000000000000000000000000000000000000..0b8239c3cc469dce495c9440de7f43f527edb829
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| --- /dev/null
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| +++ b/media/base/video_frame.cc
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| @@ -0,0 +1,170 @@
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| +// Copyright (c) 2010 The Chromium Authors. All rights reserved.
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| +// Use of this source code is governed by a BSD-style license that can be
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| +// found in the LICENSE file.
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| +
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| +#include "media/base/video_frame.h"
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| +
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| +namespace media {
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| +
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| +// static
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| +void VideoFrame::CreateFrame(VideoFrame::Format format,
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| +                             size_t width,
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| +                             size_t height,
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| +                             base::TimeDelta timestamp,
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| +                             base::TimeDelta duration,
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| +                             scoped_refptr<VideoFrame>* frame_out) {
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| +  DCHECK(width > 0 && height > 0);
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| +  DCHECK(width * height < 100000000);
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| +  DCHECK(frame_out);
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| +  bool alloc_worked = false;
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| +  scoped_refptr<VideoFrame> frame =
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| +      new VideoFrame(format, width, height);
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| +  if (frame) {
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| +    frame->SetTimestamp(timestamp);
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| +    frame->SetDuration(duration);
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| +    switch (format) {
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| +      case VideoFrame::RGB555:
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| +      case VideoFrame::RGB565:
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| +        alloc_worked = frame->AllocateRGB(2u);
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| +        break;
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| +      case VideoFrame::RGB24:
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| +        alloc_worked = frame->AllocateRGB(3u);
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| +        break;
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| +      case VideoFrame::RGB32:
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| +      case VideoFrame::RGBA:
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| +        alloc_worked = frame->AllocateRGB(4u);
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| +        break;
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| +      case VideoFrame::YV12:
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| +      case VideoFrame::YV16:
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| +        alloc_worked = frame->AllocateYUV();
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| +        break;
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| +      default:
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| +        NOTREACHED();
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| +        alloc_worked = false;
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| +        break;
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| +    }
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| +  }
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| +  *frame_out = alloc_worked ? frame : NULL;
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| +}
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| +
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| +// static
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| +void VideoFrame::CreateEmptyFrame(scoped_refptr<VideoFrame>* frame_out) {
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| +  *frame_out = new VideoFrame(VideoFrame::EMPTY, 0, 0);
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| +}
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| +
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| +// static
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| +void VideoFrame::CreateBlackFrame(int width, int height,
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| +                                  scoped_refptr<VideoFrame>* frame_out) {
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| +  DCHECK_GT(width, 0);
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| +  DCHECK_GT(height, 0);
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| +
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| +  // Create our frame.
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| +  scoped_refptr<VideoFrame> frame;
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| +  const base::TimeDelta kZero;
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| +  VideoFrame::CreateFrame(VideoFrame::YV12, width, height, kZero, kZero,
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| +                          &frame);
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| +  DCHECK(frame);
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| +
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| +  // Now set the data to YUV(0,128,128).
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| +  const uint8 kBlackY = 0x00;
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| +  const uint8 kBlackUV = 0x80;
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| +
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| +  // Fill the Y plane.
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| +  uint8* y_plane = frame->data(VideoFrame::kYPlane);
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| +  for (size_t i = 0; i < frame->height_; ++i) {
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| +    memset(y_plane, kBlackY, frame->width_);
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| +    y_plane += frame->stride(VideoFrame::kYPlane);
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| +  }
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| +
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| +  // Fill the U and V planes.
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| +  uint8* u_plane = frame->data(VideoFrame::kUPlane);
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| +  uint8* v_plane = frame->data(VideoFrame::kVPlane);
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| +  for (size_t i = 0; i < (frame->height_ / 2); ++i) {
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| +    memset(u_plane, kBlackUV, frame->width_ / 2);
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| +    memset(v_plane, kBlackUV, frame->width_ / 2);
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| +    u_plane += frame->stride(VideoFrame::kUPlane);
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| +    v_plane += frame->stride(VideoFrame::kVPlane);
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| +  }
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| +
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| +  // Success!
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| +  *frame_out = frame;
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| +}
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| +
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| +static inline size_t RoundUp(size_t value, size_t alignment) {
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| +  // Check that |alignment| is a power of 2.
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| +  DCHECK((alignment + (alignment - 1)) == (alignment | (alignment - 1)));
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| +  return ((value + (alignment - 1)) & ~(alignment-1));
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| +}
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| +
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| +bool VideoFrame::AllocateRGB(size_t bytes_per_pixel) {
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| +  // Round up to align at a 64-bit (8 byte) boundary for each row.  This
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| +  // is sufficient for MMX reads (movq).
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| +  size_t bytes_per_row = RoundUp(width_ * bytes_per_pixel, 8);
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| +  planes_ = VideoFrame::kNumRGBPlanes;
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| +  strides_[VideoFrame::kRGBPlane] = bytes_per_row;
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| +  data_[VideoFrame::kRGBPlane] = new uint8[bytes_per_row * height_];
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| +  DCHECK(data_[VideoFrame::kRGBPlane]);
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| +  DCHECK(!(reinterpret_cast<intptr_t>(data_[VideoFrame::kRGBPlane]) & 7));
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| +  COMPILE_ASSERT(0 == VideoFrame::kRGBPlane, RGB_data_must_be_index_0);
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| +  return (NULL != data_[VideoFrame::kRGBPlane]);
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| +}
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| +
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| +bool VideoFrame::AllocateYUV() {
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| +  DCHECK(format_ == VideoFrame::YV12 ||
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| +         format_ == VideoFrame::YV16);
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| +  // Align Y rows at 32-bit (4 byte) boundaries.  The stride for both YV12 and
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| +  // YV16 is 1/2 of the stride of Y.  For YV12, every row of bytes for U and V
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| +  // applies to two rows of Y (one byte of UV for 4 bytes of Y), so in the
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| +  // case of YV12 the strides are identical for the same width surface, but the
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| +  // number of bytes allocated for YV12 is 1/2 the amount for U & V as YV16.
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| +  // We also round the height of the surface allocated to be an even number
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| +  // to avoid any potential of faulting by code that attempts to access the Y
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| +  // values of the final row, but assumes that the last row of U & V applies to
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| +  // a full two rows of Y.
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| +  size_t alloc_height = RoundUp(height_, 2);
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| +  size_t y_bytes_per_row = RoundUp(width_, 4);
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| +  size_t uv_stride = RoundUp(y_bytes_per_row / 2, 4);
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| +  size_t y_bytes = alloc_height * y_bytes_per_row;
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| +  size_t uv_bytes = alloc_height * uv_stride;
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| +  if (format_ == VideoFrame::YV12) {
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| +    uv_bytes /= 2;
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| +  }
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| +  uint8* data = new uint8[y_bytes + (uv_bytes * 2)];
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| +  if (data) {
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| +    planes_ = VideoFrame::kNumYUVPlanes;
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| +    COMPILE_ASSERT(0 == VideoFrame::kYPlane, y_plane_data_must_be_index_0);
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| +    data_[VideoFrame::kYPlane] = data;
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| +    data_[VideoFrame::kUPlane] = data + y_bytes;
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| +    data_[VideoFrame::kVPlane] = data + y_bytes + uv_bytes;
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| +    strides_[VideoFrame::kYPlane] = y_bytes_per_row;
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| +    strides_[VideoFrame::kUPlane] = uv_stride;
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| +    strides_[VideoFrame::kVPlane] = uv_stride;
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| +    return true;
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| +  }
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| +  NOTREACHED();
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| +  return false;
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| +}
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| +
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| +VideoFrame::VideoFrame(VideoFrame::Format format,
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| +                       size_t width,
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| +                       size_t height) {
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| +  format_ = format;
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| +  width_ = width;
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| +  height_ = height;
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| +  planes_ = 0;
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| +  memset(&strides_, 0, sizeof(strides_));
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| +  memset(&data_, 0, sizeof(data_));
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| +}
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| +
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| +VideoFrame::~VideoFrame() {
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| +  // In multi-plane allocations, only a single block of memory is allocated
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| +  // on the heap, and other |data| pointers point inside the same, single block
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| +  // so just delete index 0.
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| +  delete[] data_[0];
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| +}
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| +
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| +bool VideoFrame::IsEndOfStream() const {
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| +  return format_ == VideoFrame::EMPTY;
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| +}
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| +
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| +}  // namespace media
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| 
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