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Quantized Compressive Sensing Measurement Based on Improved Subspace Pursuit Algorithm

机译:基于改进子空间追踪算法的量化压缩感知测量

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摘要

Recent research results in compressive sensing have shown that sparse signals can be recovered from a small number of random measurements. Whether quantized compressive measurements can provide an efficient representation of sparse signals in information-theoretic needs discuss. In this paper, the distortion rate functions are used as a tool to research the quantizing compressive sensing measurements bring about average distortion rate. Both uniform quantization and non-uniform quantization were considered, for quantized measurements, the improved subspace pursuit was adapted to accommodate quantization error based on the concept of consistency, and experimental results show that the improved algorithm significantly reduces the reconstruction distortion when compared to standard compressive sensing techniques.
机译:压缩感测的最新研究结果表明,可以从少量的随机测量中恢复稀疏信号。在信息理论需求讨论中,量化的压缩测量是否可以提供稀疏信号的有效表示。在本文中,将失真率函数用作研究量化压缩感测结果带来平均失真率的工具。同时考虑了均匀量化和非均匀量化,对于量化测量,基于一致性的概念,改进的子空间追踪适应了量化误差,实验结果表明,与标准压缩算法相比,改进算法显着降低了重构失真。传感技术。

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