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Characteristics of Equinumber Principle for Adaptive Vector Quantization

机译:自适应矢量量化的等值原理的特征

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This paper describes characteristics of adaptive vector quantization according to the equinumber principle. Three methods of adaptive vector quantization are presented with the objective of avoiding the initial dependency of reference vectors. The present approaches which have output units without neighboring relations equalize the numbers of inputs in a partition space. The first approach is a creation method which sequentially creates output units to reach a predetermined number of neurons founded on the equinumber principle in the learning process. The second is a reduction method which sequentially deletes output units to reach a prespecifled number. The third is an unification method of the creation and reduction methods, which deletes units after creating under the predetermined number. Experimental results show the properties of the present techniques.
机译:本文根据等值原理描述了自适应矢量量化的特征。提出了三种自适应矢量量化方法,其目的是避免参考矢量的初始依赖性。具有没有相邻关系的输出单元的本方法使分区空间中的输入数量相等。第一种方法是一种创建方法,该方法在学习过程中顺序创建输出单元,以达到基于等值原理建立的预定数量的神经元。第二种是简化方法,该方法顺序删除输出单位以达到预定数量。第三是创建和减少方法的统一方法,其在以预定数量创建之后删除单元。实验结果表明了本技术的特性。

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