Sparse binary matrixes of QC-LDPC code for compressed sensing

Xiao-Yan Jiang, Zheng-Guang Xie
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引用次数: 1

Abstract

To overcome the shortcoming that random measurement matrix is hard for hardware implementation. A new structural and sparse deterministic measurement matrix based on parity check matrix in quasi-cyclic low-density parity-check code was proposed by studying the theory of compressed sensing. To verify the performance of the new matrix, reconstruction experiments were conducted. Experimental results show that, compared with the commonly used matrixes, the proposed matrix has lower reconstruction error under the same reconstruction algorithm and compression ratio. The proposed method achieves certain improvement in Peak Signal-to-Noise Ratio. Especially, if it was applied to hardware implementation, the need for physical storage space and the complexity of the hardware implementation should be greatly reduced due to the properties of quasi-cyclic and symmetric in the structure.
用于压缩感知的QC-LDPC稀疏二进制矩阵代码
克服了随机测量矩阵难以硬件实现的缺点。通过对压缩感知理论的研究,提出了一种基于准循环低密度校验码的奇偶校验矩阵的结构稀疏确定性测量矩阵。为了验证新矩阵的性能,进行了重构实验。实验结果表明,在相同的重构算法和压缩比下,与常用的矩阵相比,本文提出的矩阵具有更低的重构误差。该方法在峰值信噪比上有一定的提高。特别是将其应用于硬件实现时,由于该结构具有准循环和对称的特性,大大降低了对物理存储空间的需求和硬件实现的复杂性。
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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