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Error and Congestion Resilient Video Streaming over Broadband Wireless

机译:宽带无线上的错误和拥塞弹性视频流

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In this paper, error resilience is achieved by adaptive, application-layer rateless channel coding, which is used to protect H.264/Advanced Video Coding (AVC) codec data-partitioned videos. A packetization strategy is an effective tool to control error rates and, in the paper, source-coded data partitioning serves to allocate smaller packets to more important compressed video data. The scheme for doing this is applied to real-time streaming across a broadband wireless link. The advantages of rateless code rate adaptivity are then demonstrated in the paper. Because the data partitions of a video slice are each assigned to different network packets, in congestion-prone wireless networks the increased number of packets per slice and their size disparity may increase the packet loss rate from buffer overflows. As a form of congestion resilience, this paper recommends packet-size dependent scheduling as a relatively simple way of alleviating the buffer-overflow problem arising from data-partitioned packets. The paper also contributes an analysis of data partitioning and packet sizes as a prelude to considering scheduling regimes. The combination of adaptive channel coding and prioritized packetization for error resilience with packet-size dependent packet scheduling results in a robust streaming scheme specialized for broadband wireless and real-time streaming applications such as video conferencing, video telephony, and telemedicine.
机译:本文通过自适应的应用层无速率信道编码来实现错误恢复,该编码用于保护H.264 /高级视频编码(AVC)编解码器数据分区的视频。打包策略是控制错误率的有效工具,并且在本文中,源编码数据分区用于将较小的数据包分配给更重要的压缩视频数据。用于执行此操作的方案适用于跨宽带无线链路的实时流。然后证明了无速率码率自适应的优点。因为视频切片的数据分区每个都分配给不同的网络数据包,所以在易拥塞的无线网络中,每个切片的数据包数量增加以及它们的大小差异可能会增加来自缓冲区溢出的数据包丢失率。作为拥塞恢复的一种形式,本文建议将取决于数据包大小的调度作为缓解数据分区数据包引起的缓冲区溢出问题的一种相对简单的方法。本文还对数据分区和数据包大小进行了分析,作为考虑调度机制的前奏。自适应信道编码和用于错误恢复的优先分组化与取决于分组大小的分组调度相结合,形成了一种健壮的流传输方案,专门用于宽带无线和实时流传输应用,例如视频会议,视频电话和远程医疗。

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