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Adaptive Block Compressed Sensing Algorithm based on Integral Imaging

机译:基于整体成像的自适应块压缩检测算法

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In order to effectively compress and reconstruct the elemental image array in integral imaging, an improved block compressed sensing algorithm based on integral imaging is proposed. The amount of elemental image data is large and the redundancy is high, so the image is first sampled by interlaced rows and columns, and then the discrete cosine transform (DCT) is performed. The block classification is based on the discrete cosine transform coefficient difference between adjacent pixels in the image block, and is divided into four sub-blocks according to the characteristics of the image. Use different sampling rates to measure samples for different types of sub-blocks. In the reconstruction stage, the total variation algorithm is used to reconstruct each sub-block, the sub-blocks are recombined together to obtain the entire image, and then the image is restored by extracting samples, and finally a complete reconstructed image is obtained. Experimental results show that the use of this algorithm to compress and reconstruct integral imaging images has a good effect.
机译:为了有效地压缩和重构积分成像要素图像阵列,基于积分成像的改进的块压缩传感算法。元素的图像数据的量是大的和冗余是高的,所以图像被变换(DCT)进行离散余弦隔行的行和列,然后第一采样。块分类是基于离散余弦变换的图象块的相邻像素之间系数差,并根据该图像的特征分成四个子块。使用不同的采样率来衡量不同类型的子块的样本。在重建阶段,总变异算法被用于重建每个子块,子块被重新组合在一起以获得整个图像,然后将图像通过提取样品恢复,最终得到一个完整的重构图像。实验结果表明,使用这种算法的压缩和重建积分成像的图像具有良好的效果。

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