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Compressive sampling and adaptive dictionary learning for the packet loss recovery in audio multimedia streaming

机译:压缩采样和自适应字典学习用于音频多媒体流中的丢包恢复

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摘要

In this work, a scheme based on a compressive sampling technique and a fast dictionary learning approach for reconstructing audio content in multimedia streaming is introduced. Audio streaming data are encapsulated in different packets by means of an interleaving technique. The compressive sampling technique is used to reconstruct audio information in case of lost packets, with a sparsifying basis provided by a greedy adaptive dictionary learning algorithm. In order to assess the performance of the methodology, several experiments on speech and musical audio signals are presented.
机译:在这项工作中,介绍了一种基于压缩采样技术和快速字典学习方法的方案,用于在多媒体流中重建音频内容。音频流数据通过交织技术封装在不同的数据包中。压缩采样技术用于在丢失数据包的情况下重建音频信息,并通过贪婪的自适应字典学习算法提供稀疏的基础。为了评估该方法的性能,提出了一些有关语音和音乐音频信号的实验。

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