压缩传感中马蹄形先验全局收缩参数的影响

IF 2.2 3区 物理与天体物理 Q2 MECHANICS
Yasushi Nagano and Koji Hukushima
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引用次数: 0

摘要

本研究探讨了马蹄先验(全局-局部收缩先验之一)的全局收缩参数 τ 对稀疏信号处理中线性回归的影响。研究采用了统计力学方法来检验信号估计的准确性。从近似信息传递(AMP)作为一种求解算法的动态特征和自由能谱的静态特征的角度,讨论了在τ变化的无噪声压缩传感中信号恢复成功与失败的相图。研究发现,存在一个 AMP 算法难以恢复真实信号的参数区域,即使真实信号是局部稳定的。对自由能谱的分析还为 τ 的最佳选择提供了重要启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of global shrinkage parameter of horseshoe prior in compressed sensing
This study investigates the effect of the global shrinkage parameter τ of a horseshoe prior, one of the global–local shrinkage priors, on linear regression in sparse signal processing. Statistical mechanics methods are employed to examine the accuracy of signal estimation. The phase diagram of the success and failure of signal recovery in noiseless compressed sensing with varying τ is discussed from the viewpoint of dynamic characterization of approximate message passing (AMP) as a solving algorithm and static characterization of the free-energy landscape. It is found that there exists a parameter region where the AMP algorithm can hardly recover the true signal, even though the true signal is locally stable. The analysis of the free-energy landscape also provides important insight into the optimal choice of τ.
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来源期刊
CiteScore
4.50
自引率
12.50%
发文量
210
审稿时长
1.0 months
期刊介绍: JSTAT is targeted to a broad community interested in different aspects of statistical physics, which are roughly defined by the fields represented in the conferences called ''Statistical Physics''. Submissions from experimentalists working on all the topics which have some ''connection to statistical physics are also strongly encouraged. The journal covers different topics which correspond to the following keyword sections. 1. Quantum statistical physics, condensed matter, integrable systems Scientific Directors: Eduardo Fradkin and Giuseppe Mussardo 2. Classical statistical mechanics, equilibrium and non-equilibrium Scientific Directors: David Mukamel, Matteo Marsili and Giuseppe Mussardo 3. Disordered systems, classical and quantum Scientific Directors: Eduardo Fradkin and Riccardo Zecchina 4. Interdisciplinary statistical mechanics Scientific Directors: Matteo Marsili and Riccardo Zecchina 5. Biological modelling and information Scientific Directors: Matteo Marsili, William Bialek and Riccardo Zecchina
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