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信息论压缩测量设计。

Information-Theoretic Compressive Measurement Design.

出版信息

IEEE Trans Pattern Anal Mach Intell. 2017 Jun;39(6):1150-1164. doi: 10.1109/TPAMI.2016.2568189. Epub 2016 May 13.

Abstract

An information-theoretic projection design framework is proposed, of interest for feature design and compressive measurements. Both Gaussian and Poisson measurement models are considered. The gradient of a proposed information-theoretic metric (ITM) is derived, and a gradient-descent algorithm is applied in design; connections are made to the information bottleneck. The fundamental solution structure of such design is revealed in the case of a Gaussian measurement model and arbitrary input statistics. This new theoretical result reveals how ITM parameter settings impact the number of needed projection measurements, with this verified experimentally. The ITM achieves promising results on real data, for both signal recovery and classification.

摘要

提出了一种信息论投影设计框架,适用于特征设计和压缩测量。同时考虑了高斯和泊松测量模型。推导了所提出的信息论度量(ITM)的梯度,并在设计中应用了梯度下降算法;与信息瓶颈建立了联系。在高斯测量模型和任意输入统计的情况下,揭示了这种设计的基本解结构。这个新的理论结果揭示了 ITM 参数设置如何影响所需投影测量的数量,这在实验中得到了验证。在真实数据上,ITM 在信号恢复和分类方面都取得了有希望的结果。

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