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Medical Image Compression Based on Vector Quantization with Variable Block Sizes in Wavelet Domain

机译:基于矢量量化的小波域可变块医学图像压缩

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摘要

An optimized medical image compression algorithm based on wavelet transform and improved vector quantization is introduced. The goal of the proposed method is to maintain the diagnostic-related information of the medical image at a high compression ratio. Wavelet transformation was first applied to the image. For the lowest-frequency subband of wavelet coefficients, a lossless compression method was exploited; for each of the high-frequency subbands, an optimized vector quantization with variable block size was implemented. In the novel vector quantization method, local fractal dimension (LFD) was used to analyze the local complexity of each wavelet coefficients, subband. Then an optimal quadtree method was employed to partition each wavelet coefficients, subband into several sizes of subblocks. After that, a modified K-means approach which is based on energy function was used in the codebook training phase. At last, vector quantization coding was implemented in different types of sub-blocks. In order to verify the effectiveness of the proposed algorithm, JPEG, JPEG2000, and fractal coding approach were chosen as contrast algorithms. Experimental results show that the proposed method can improve the compression performance and can achieve a balance between the compression ratio and the image visual quality.
机译:介绍了一种基于小波变换和改进矢量量化的医学图像压缩优化算法。所提出的方法的目的是以高压缩比保持医学图像的诊断相关信息。小波变换首先应用于图像。对于小波系数的最低频率子带,采用了无损压缩方法。对于每个高频子带,实现了具有可变块大小的优化矢量量化。在新颖的矢量量化方法中,局部分形维数(LFD)用于分析每个小波系数子带的局部复杂度。然后采用最佳四叉树方法将每个小波系数,子带划分为若干大小的子块。之后,在码本训练阶段使用了基于能量函数的改进的K均值方法。最后,在不同类型的子块中实现了矢量量化编码。为了验证所提算法的有效性,选择了JPEG,JPEG2000和分形编码方法作为对比算法。实验结果表明,该方法可以提高压缩性能,并且可以在压缩率与图像视觉质量之间取得平衡。

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