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Compressed-Domain Techniques for Error-Resilient Video Transcoding Using RPS

机译:使用RPS的抗差错视频转码的压缩域技术

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In video applications where video sequences are compressed and stored in a storage device for future delivery, the encoding process is typically carried out without enough prior knowledge about the channel characteristics of a network. Error-resilient transcoding plays an important role to provide an addition of resilience to the video data, where or whenever it is needed. Recently, a reference picture selection (RPS) scheme has been adopted in an error-resilient transcoder in order to reduce error effects for the already encoded video bitstream. In this approach, the transcoder learns through a feedback channel about the damaged parts of a previously coded frame and then decides to code the next P-frame not relative to the most recent, but to an older, reference picture, which is known to be error-free in the decoder. One straightforward approach of adopting RPS in error-resilient transcoding is to decode all the P-frames from the previously nearest I-frame to the current transmitted frame which is then re-encoded with a new reference frame; this can create undesirable complexity in the transcoder as well as introduce re-encoding errors. In this paper, some novel techniques are suggested for an effective implementation of RPS in the error-resilient transcoder with the minimum requirement on its complexity. All the proposed techniques will manipulate video data in the compressed domain such that the computational loading of the transcoder is greatly reduced. By utilizing these new compressed-domain techniques, we develop a new structure to handle various types of macroblocks in the transcoder which re-uses motion vectors and prediction errors from the encoded bitstream. Experimental results demonstrate that significant improvements in terms of transcoder complexity and quality of reconstructed video can be achieved by employing our compressed-domain techniques.
机译:在视频序列被压缩并存储在存储设备中以备将来传送的视频应用中,编码过程通常在没有足够的网络信道特性先验知识的情况下进行。容错性转码在向视频数据提供附加弹性的过程中发挥重要作用,无论何时何地。近来,参考图像选择(RPS)方案已经在防错代码转换器中采用,以便减少对已经编码的视频比特流的错误影响。在这种方法中,代码转换器通过反馈通道了解先前编码帧的损坏部分,然后决定不与最新的参考图像相对,而是相对于较旧的参考图像对下一个P帧进行编码。解码器中没有错误。在容错代码转换中采用RPS的一种直接方法是将所有P帧从先前最接近的I帧解码为当前传输的帧,然后再用新的参考帧对其进行重新编码。这会在代码转换器中造成不希望的复杂性,并引入重新编码错误。在本文中,提出了一些新颖的技术,可在对错错代码转换器中有效实现RPS的同时,对RPS的复杂性要求最低。所有提出的技术将在压缩域中处理视频数据,从而大大减少了代码转换器的计算负荷。通过利用这些新的压缩域技术,我们开发了一种新的结构来处理转码器中的各种类型的宏块,从而重新使用运动矢量和来自编码比特流的预测误差。实验结果表明,通过采用我们的压缩域技术,可以在代码转换器复杂性和重构视频质量方面取得显着改善。

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