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Extended AMP algorithm for correlated distributed compressed sensing model

机译:相关分布式压缩检测模型的扩展AMP算法

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We study the correlated distributed compressed sensing (C-DCS) scenarios where the measurement matrices and the signals at different sensors can be correlated. It is assumed that the measurement matrices are Gaussian random matrices and the signals share a common sparse support. Our model is a generalization of the commonly used DCS model where the measurement matrices are independent and the standard multiple measurement vector (MMV) model where the measurement matrices are identical. Based on the famous approximate message passing (AMP) framework, an algorithm is developed to address the correlated matrices and the correlated signals. Simulations show that the empirical results almost perfectly match the theoretical performance prediction. According to the authors' knowledge, such a match is achieved for the first time.
机译:我们研究相关的分布式压缩感测(C-DCS)场景,其中可以相关的测量矩阵和不同传感器处的信号。假设测量矩阵是高斯随机矩阵,并且信号共享常见的稀疏支持。我们的模型是常用的DCS模型的概括,其中测量矩阵是独立的,并且标准多个测量向量(MMV)模型,其中测量矩阵相同。基于来自着名的近似消息传递(AMP)框架,开发了一种算法来解决相关矩阵和相关信号。仿真表明,经验结果几乎完全匹配理论性能预测。根据作者的知识,第一次实现这样的匹配。

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