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Vector quantizer of medical image using wavelet transform and enhanced SOM algorithm

机译:利用小波变换和增强型SOM算法的医学图像矢量量化器

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摘要

Vector quantizer takes care of special image features like edges, and it belongs to the class of quantizers known as the second-generation coders. This paper proposes a novel vector quantization method using the wavelet transform and the enhanced SOM algorithm for the medical image compression. We propose the enhanced self-organizing algorithm to resolve the defects of the conventional SOM algorithm. The enhanced SOM, at first, reflects the error between the winner node and the input vector to the weight adaptation by using the frequency of the selection of the winner node. Secondly, it adjusts the weight in proportion to the present weight change and the previous one as well. To reduce the blocking effect and the computation requirement, we construct training image vectors involving image features by using the wavelet transform and apply the enhanced SOM algorithm to them for generating a well-defined codebook. Our experimental results have shown that the proposed method energizes the compression ratio and the decompression quality.
机译:矢量量化器负责特殊的图像特征(如边缘),它属于被称为第二代编码器的量化器类别。提出了一种利用小波变换和增强型SOM算法进行医学图像压缩的矢量量化方法。我们提出了增强的自组织算法,以解决传统SOM算法的缺陷。首先,增强的SOM通过使用获胜者节点的选择频率,将获胜者节点与输入向量之间的误差反映到权重适配中。其次,它会根据当前的重量变化和先前的重量变化来调整重量。为了减少块效应和计算需求,我们通过使用小波变换构造包含图像特征的训练图像向量,并将增强的SOM算法应用于它们以生成定义良好的码本。我们的实验结果表明,所提出的方法激发了压缩比和减压质量。

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