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Reference data optimization learning method and pattern recognition system

机译:参考数据优化学习方法和模式识别系统

摘要

The present invention is directed to a pattern recognition system in which new reference data to be added is efficiently learned. In the pattern recognition system, there is performed the calculation of distances equivalent to similarities between input data of a pattern search target and a plurality of reference data, and based on input data of a fixed number of times corresponding to the reference data set as a recognized winner, a gravity center thereof is calculated to optimize the reference data. Furthermore, a threshold value is changed to enlarge/reduce recognition areas, whereby erroneous recognition is prevented and a recognition rate is improved.
机译:本发明针对一种模式识别系统,其中有效地学习要添加的新参考数据。在模式识别系统中,基于与设置为a的参考数据相对应的固定次数的输入数据,执行与模式搜索目标的输入数据和多个参考数据之间的相似度相等的距离的计算。对于公认的获胜者,计算其重心以优化参考数据。此外,通过改变阈值以扩大/缩小识别区域,从而防止了错误识别并且提高了识别率。

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