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Analysis in Theory and Technology Application of Compressive Sensing

机译:压缩传感理论与技术应用分析

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With the information demand increasing, the method which based on Nyquist sampling is expensive and low efficiency in ultra wideband signal processing. To extract before transmission data storage can cause a lot of waste resources. Compressive Sensing can make sampling and compression at the same time. The sampling frequency is far less than the Nyquist sampling frequency as long as the signal is sparse in a domain. It can deal with discrete signal directly and take a few values for processing from n dimension discrete signal. Some algorithm is used to recover on the receiving-end. A compressive Sensing method is proposed in this paper to reduce the requirement of the system in sampling rate. Firstly, the CS basic theory is introduced and three key technologies are summarized: sparse representation of signals, the design of the measurement matrix, compressive sensing reconstruction algorithm. Then the application of compressive sensing technology in specific areas is introduced.
机译:随着信息需求的增加,基于奈奎斯特采样的方法在超宽带信号处理中既昂贵又效率低。在传输之前提取数据存储会造成很多浪费资源。压缩感测可以同时进行采样和压缩。只要信号在域中稀疏,采样频率就远远小于奈奎斯特采样频率。它可以直接处理离散信号,并从n维离散信号中取一些值进行处理。一些算法用于在接收端进行恢复。为了降低系统对采样率的要求,本文提出了一种压缩传感方法。首先介绍了计算机科学的基础理论,总结了三项关键技术:信号的稀疏表示,测量矩阵的设计,压缩感知重构算法。然后介绍了压缩传感技术在特定领域的应用。

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