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Combination of Vector Quantization and Visualization

机译:向量量化与可视化的结合

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In this paper, we present a comparative analysis of a combination of two vector quantization methods (self-organizing map and neural gas), based on a neural network and multidimensional scaling that is used for visualization of codebook vectors obtained by vector quantization methods. The dependence of computing time on the number of neurons, the ratio between the number of neuron-winners and that of all neurons, quantization and mapping qualities, and preserving of a data structure in the mapping image are investigated.
机译:在本文中,我们将对两种矢量量化方法(自组织图和神经气体)的组合进行比较分析,该方法基于神经网络和多维缩放,用于可视化通过矢量量化方法获得的码本矢量。研究了计算时间对神经元数量的依赖性,神经元获胜者与所有神经元的数量之比,量化和映射质量以及映射图像中数据结构的保留。

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