分布式文件共享:网络编码与压缩感知

Huimin Chen
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引用次数: 8

摘要

在点对点文件分发网络中,一个大文件被分割成驻留在多个存储位置的块。对等节点试图通过从随机选择的对等节点下载块来检索原始文件。我们比较了四种存储策略的性能:未编码、擦除编码、随机线性编码和编码块上的随机线性编码。我们表明,原则上,随机线性编码在存储需求和解码复杂性之间做出了更好的权衡。但是,所有原始块的随机线性组合不能充分利用文件块的稀疏性。在压缩感知最新研究成果的启发下,我们研究了随机线性编码在编码块上的设计权衡,提出了一种基于基追踪的高效解码算法。我们表明,一个对等笔记必须连接的存储位置的最小数量,以高概率重建整个文件,可以显著小于文件被分割成的块的总数
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distributed File Sharing: Network Coding Meets Compressed Sensing
In a peer-to-peer file distribution network, a large file is split into blocks residing in multiple storage locations. A peer node tries to retrieve the original file by downloading blocks from randomly chosen peers. We compare the performance of four storage strategies: uncoded, erasure coding, random linear coding, and random linear coding over coded blocks. We show that, in principle, random linear coding makes a better tradeoff between the storage requirement and decoding complexity. However, the sparsity of the file blocks is not fully exploited by random linear combinations of all original blocks. Motivated by the recent results from compressed sensing, we study the design tradeoff in random linear coding over coded blocks and propose an efficient decoding algorithm based on basis pursuit. We show that the minimum number of storage locations that a peer note has to connect to reconstruct the entire file with high probability can be significantly smaller than the total number of blocks that the file is broken into
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