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Recovering block-structured activations using compressive measurements

机译:使用压缩测量恢复块结构的激活

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We consider the problems of detection and support recovery of a contiguous block of weak activation in a large matrix, from noisy, possibly adaptively chosen, compressive (linear) measurements. We precisely characterize the tradeoffs between the various problem dimensions, the signal strength and the number of measurements required to reliably detect and recover the support of the signal, both for passive and adaptive measurement schemes. In each case, we complement algorithmic results with information-theoretic lower bounds. Analogous to the situation in the closely related problem of noisy compressed sensing, we show that for detection neither adaptivity, nor structure reduce the minimax signal strength requirement. On the other hand we show the rather surprising result that, contrary to the situation in noisy compressed sensing, the signal strength requirement to recover the support of a contiguous block-structured signal is strongly influenced by both the signal structure and the ability to choose measurements adaptively.
机译:我们考虑了从嘈杂的,可能自适应选择的压缩(线性)测量中检测并支持恢复大矩阵中弱激活的连续块的问题。对于无源和自适应测量方案,我们精确地描述了各种问题维度,信号强度和可靠检测和恢复信号支持所需的测量次数之间的权衡。在每种情况下,我们用信息理论的下限来补充算法结果。类似于与嘈杂的压缩感测密切相关的问题中的情况,我们表明对于检测,自适应性和结构都不会降低minimax信号强度要求。另一方面,我们显示出令人惊讶的结果,与嘈杂的压缩感测情况相反,恢复信号的强度对恢复连续块结构信号的支持的要求受到信号结构和选择测量能力的强烈影响。适应性地。

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