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An Approach to 2D Signals Recovering in Compressive Sensing Context

机译:压缩感知环境下的二维信号恢复方法

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In this paper, we study the compressive sensing effects on 2D signals exhibiting sparsity in 2D DFT domain. A simple algorithm for reconstruction of randomly undersampled data is proposed. It is based on the analytically determined threshold that precisely separates signal and non-signal components in the 2D DFT domain. The algorithm operates fast in a single iteration providing the accurate signal reconstruction. In the situations that are not comprised by the analytic derivation and constrains, the algorithm is still efficient and need just a couple of iterations. The proposed solution shows promising results in ISAR imaging (simulated data are used), where the reconstruction is achieved even in the case when less than 10 % of data are available.
机译:在本文中,我们研究了在2D DFT域中表现出稀疏性的2D信号的压缩感测效果。提出了一种重构随机欠采样数据的简单算法。它基于解析确定的阈值,该阈值可精确分离2D DFT域中的信号和非信号分量。该算法可在单次迭代中快速运行,从而提供准确的信号重建。在解析推导和约束不包含的情况下,该算法仍然有效,只需要进行几次迭代即可。所提出的解决方案在ISAR成像(使用模拟数据)中显示出令人鼓舞的结果,即使在可用数据少于10%的情况下,也可以实现重建。

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