Low-Complexity Adaptive Streaming via Optimized A Priori Media Pruning

Jacob Chakareski, P. Frossard
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引用次数: 11

Abstract

Source pruning is performed whenever the data rate of the compressed source exceeds the available communication or storage resources. In this paper, we propose a framework for rate-distortion optimized pruning of a video source. The framework selects which packets, if any, from the compressed representation of the source should be discarded so that the data rate of the pruned source is adjusted accordingly, while the resulting reconstruction distortion is minimized. The framework relies on a rate-distortion preamble that is created at compression time for the video source and that comprises the video packets' sizes, interdependencies and distortion importance. As one application of the pruning framework, we design a low-complexity rate-distortion optimized ARQ scheme for video streaming. In the experiments, we examine the performance of the pruning framework depending on the employed distortion model that describes the effect of packet interdependencies on the reconstruction quality. In addition, our experimental results show that the enhanced ARQ technique provides a significant performance gain over a conventional system for video streaming that does not take into account the different importance of the individual video packets. These gains are achieved without an increase in packet scheduling complexity, which makes the proposed technique suitable for online R-D optimized streaming
基于优化先验媒体剪枝的低复杂度自适应流
当压缩源的数据速率超过可用的通信或存储资源时,将执行源修剪。在本文中,我们提出了一个视频源的率失真优化修剪框架。框架选择哪些数据包(如果有的话)应该从源的压缩表示中被丢弃,以便相应地调整修剪后的源的数据速率,同时最小化所产生的重构失真。该框架依赖于在压缩时为视频源创建的速率失真序言,该序言包括视频包的大小、相互依赖性和失真重要性。作为修剪框架的一种应用,我们设计了一种低复杂度、率失真优化的视频流ARQ方案。在实验中,我们根据所采用的描述数据包相互依赖性对重建质量影响的失真模型来检查修剪框架的性能。此外,我们的实验结果表明,与传统的视频流系统相比,增强的ARQ技术提供了显着的性能增益,而传统的视频流系统没有考虑到单个视频数据包的不同重要性。这些增益在不增加数据包调度复杂性的情况下实现,这使得所提出的技术适用于在线R-D优化流
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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