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Image decoding optimization based on compressive sensing   总被引:1,自引:0,他引:1  
Transform-based image codec follows the basic principle: the reconstructed quality is decided by the quantization level. Compressive sensing (CS) breaks the limit and states that sparse signals can be perfectly recovered from incomplete or even corrupted information by solving convex optimization. Under the same acquisition of images, if images are represented sparsely enough, they can be reconstructed more accurately by CS recovery than inverse transform. So, in this paper, we utilize a modified TV operator to enhance image sparse representation and reconstruction accuracy, and we acquire image information from transform coefficients corrupted by quantization noise. We can reconstruct the images by CS recovery instead of inverse transform. A CS-based JPEG decoding scheme is obtained and experimental results demonstrate that the proposed methods significantly improve the PSNR and visual quality of reconstructed images compared with original JPEG decoder.  相似文献   
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针对含有不确定参数的优化问题,鲁棒优化作为一种有效的优化手段引起了人们的普遍关注。本文主要介绍了CVaR风险投资纽合模型,并在模型中加入消费,将椭球不确定集下鲁棒优化应用到该模型中,这不仅解决了该模型由于参数的不确定性所造成的缺陷,而且也比较符合实际情况。  相似文献   
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