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An Anti-interfering Reconstruction Algorithm Based on Compressed Sensing

机译:一种基于压缩感测的防干扰重建算法

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When images compressed by traditional transformation-based compression algorithms are transmitted over wireless channels, if the gaussian random interference causes the loss of the crucial transformation coefficients, the contents of the reconstructed images will be lost obviously and this will reduce the accuracy of the subsequent detection and recognition results greatly. In order to solve this problem, this paper proposed an anti-interfering image reconstruction algorithm based on compressed sensing. This algorithm first confirmed the new compressed sensing signals and the new reconstruction matrix based on the locations of the compressed sensing signal components corresponding to the gaussian-interfered bit stream, and then reconstructed the original images employing the iterative threshold algorithm. The simulation results demonstrated that the new algorithm reconstructed exact images at low bit error rates, and reconstructed inexact images whose qualities were slightly lowered without loss of local contents at high bit error rates. As a result, our algorithm is able to overcome the deficiencies of compression algorithms based on diverse transformations and the iterative threshold algorithm, thus proposes a feasible solution scheme for the anti-interfering problem that arises in wireless image transmission.
机译:当通过无线信道传输传统的转换的压缩算法压缩的图像时,如果高斯随机干扰导致关键变换系数的丢失,则重建图像的内容将显然丢失,这将降低后续检测的准确性和识别结果很大。为了解决这个问题,本文提出了一种基于压缩感测的防干扰图像重建算法。该算法首先基于对应于高斯干扰比特流的压缩检测信号分量的位置来确认新的压缩感测信号和新的重建矩阵,然后重建采用迭代阈值算法的原始图像。仿真结果表明,新算法以低比特误差速率重建精确图像,并重建了略微降低了质量的不精确图像,而不会以高比特误差速率损失本地内容。结果,我们的算法能够基于不同的变换和迭代阈值算法克服压缩算法的缺陷,从而提出了用于无线图像传输中出现的反干扰问题的可行解决方案方案。

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