Words recognition using associative memory

L. Navoni, R. Canegallo, M. Chinosi, G. Gozzini, A. Kramer, P. Rolandi
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引用次数: 2

Abstract

Introduces the application of an analog associative memory chip to word recognition, which is a fundamental topic of the text recognition process. The word recognition method takes advantage of a statistical evaluation of the behavior of the optical character recognition system preceding it. That statistical information leads to the creation of a coding that is used to store a lexicon of the most used words in the chip. An input pattern is matched against the full database of the associative memory, and a set of closest patterns is returned. The precision reached by this operation ranges from 93% to 99%. These encouraging results demonstrate the general aptitude of the chip to solve classes of problems that need to use an associative memory.
利用联想记忆识别单词
介绍了一种模拟联想记忆芯片在文字识别中的应用,这是文本识别过程中的一个基础课题。该词识别方法利用了对其前面的光学字符识别系统的行为的统计评价。这些统计信息会产生一种编码,用于在芯片中存储最常用单词的词典。输入模式与关联内存的完整数据库相匹配,并返回一组最接近的模式。该操作的精度范围为93% ~ 99%。这些令人鼓舞的结果表明,该芯片在解决需要使用联想记忆的各类问题方面具有普遍的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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