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Compressive Sensing Reconstruction Based on Weighted Directional Total Variation 被引量:1

Compressive Sensing Reconstruction Based on Weighted Directional Total Variation
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摘要 Directionality of image plays a very important role in human visual system and it is important prior information of image. In this paper we propose a weighted directional total variation model to reconstruct image from its finite number of noisy compressive samples. A novel self-adaption, texture preservation method is designed to select the weight. Inspired by majorization-minimization scheme, we develop an efficient algorithm to seek the optimal solution of the proposed model by minimizing a sequence of quadratic surrogate penalties. The numerical examples are performed to compare its performance with four state-of-the-art algorithms. Experimental results clearly show that our method has better reconstruction accuracy on texture images than the existing scheme. Directionality of image plays a very important role in human visual system and it is important prior information of image. In this paper we propose a weighted directional total variation model to reconstruct image from its finite number of noisy compressive samples. A novel self-adaption, texture preservation method is designed to select the weight. Inspired by majorization-minimization scheme, we develop an efficient algorithm to seek the optimal solution of the proposed model by minimizing a sequence of quadratic surrogate penalties. The numerical examples are performed to compare its performance with four state-of-the-art algorithms. Experimental results clearly show that our method has better reconstruction accuracy on texture images than the existing scheme.
作者 闵莉花 冯灿
出处 《Journal of Shanghai Jiaotong university(Science)》 EI 2017年第1期114-120,共7页 上海交通大学学报(英文版)
基金 the National Natural Science Foundation of China(Nos.11401318 and 11671004) the Natural Science Foundation of the Jiangsu Higher Education Institutions of China(No.15KJB110018) the Scientific Research Foundation of NUPT(No.NY214023)
关键词 压缩察觉到 加权的方向性的全部的变化 majorization 最小化算法 TP 391.4 A compressive sensing weighted directional total variation majorization-minimization algorithm TP 391.4 A
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