Sparse Bayesian Dictionary Learning with a Gaussian Hierarchical Model

被引:0
|
作者
Yang, Linxiao [1 ]
Fang, Jun [1 ]
Li, Hongbin [2 ]
机构
[1] Univ Elect Sci & Technol China, Natl Key Lab Commun, Chengdu 611731, Peoples R China
[2] Stevens Inst Technol, Dept Elect & Comp Engn, Hoboken, NJ 07030 USA
基金
美国国家科学基金会;
关键词
Dictionary learning; Gaussian-inverse Gamma prior; Gibbs sampling; OVERCOMPLETE DICTIONARIES; REPRESENTATION;
D O I
暂无
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
We consider a dictionary learning problem aimed at designing a dictionary such that the signals admits a sparse or an approximate sparse representation over the learned dictionary. The problem finds a variety of applications including image denoising, feature extraction, etc. In this paper, we propose a new hierarchical Bayesian model for dictionary learning, in which a Gaussian-inverse Gamma hierarchical prior is used to promote the sparsity of the representation. Suitable non-informative priors are also placed on the dictionary and the noise variance such that they can be reliably estimated from the data. Based on the hierarchical model, a Gibbs sampling method is developed for Bayesian inference. The proposed method have the advantage that it does not require the knowledge of the noise variance a priori. Numerical results show that the proposed method is able to learn the dictionary with an accuracy better than existing methods.
引用
收藏
页码:2564 / 2568
页数:5
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