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An Adaptive Reconstruction Algorithm for Image Block Compressed Sensing under Low Sampling Rate

机译:低采样率下图像块压缩感的自适应重建算法

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Block Compressed Sensing (CS) adapts to compressed sensing for an image. As the famous BCS with Smoothed Projected Landweber algorithm (BCS-SPL) shows bad performance when the sampling rate is in a low condition, we propose a novel algorithm called Total Variation based Sampling Adaptive Block Compressed Sensing with OMP (Orthogonal Matching Pursuit) (TVSA-BCS-OMP) to solve the following problem of BCS-SPL. TVSA-BCS-OMP blocks the whole image in an overlapping way to eliminate blocking effect. It assigns sampling rate depending on texture complexity of each block, which is measured by the block's Total Variation (TV) so that the blocks with big TV can attain higher sampling rate. Then only limited nonzero coefficients in each block are retained according to the adaptively assigned sampling rate. At last, we sample the blocks and conducts OMP reconstruction respectively. The experimental results show that under the condition of low initial sampling rate (lower than 0.2), TVSA-BCS-OMP shows better reconstruction precision, especially can attain better reconstruction performance in the texture blocks than BCS-SPL. In addition, the new algorithm costs shorter reconstruction time than BCS-SPL algorithm.
机译:块压缩传感(CS)适应图像的压缩感测。由于具有平滑投影的Landweber算法(BCS-SPL)的着名BCS显示了对采样率处于低条件时的性能不良,我们提出了一种新颖的算法,称为总基于变化的采样自适应块压缩检测,具有OMP(正交匹配追求)(TVSA -BCS-OMP)以解决BCS-SPL的以下问题。 TVSA-BCS-OMP以重叠的方式阻止整个图像来消除阻塞效果。它根据每个块的纹理复杂度分配采样率,该块由块的总变化(电视)测量,使得具有大电视的块可以获得更高的采样率。然后,根据自适应分配的采样率,仅保留每个块中的有限的非零系数。最后,我们分别对块进行采样并进行OMP重建。实验结果表明,在低初始采样率(低于0.2)的条件下,TVSA-BCS-OMP显示了更好的重建精度,特别是可以在纹理块中获得比BCS-SPL更好的重建性能。此外,新算法的重建时间比BCS-SPL算法更短。

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