正、负训练状态机归纳法在泰文字符识别中的应用

B. Kruatrachue, N. Pantrakarn, K. Siriboon
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引用次数: 6

摘要

生成识别任何字符串的模型的一个问题是,如何生成一个足够一般化的模型,以接受具有相似模式的字符串,同时又足够具体,以拒绝非目标字符串。本研究的重点是生成一个状态机形式的模型来识别字符图像方向信息衍生的字符串。状态机感应过程有两个步骤。第一步是从每个目标字符的字符串中生成机器(正训练),第二步是调整机器以拒绝任何其他字符串(负训练)。这种从字符串中自动学习的状态机归纳方法可以应用于除字符以外的其他字符串模式识别。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
State Machine Induction with Positive and Negative Training for Thai Character Recognition
One problem of generating a model to recognize any string is how to generate one that is generalized enough to accept strings with similar patterns and, at the same time, is specific enough to reject the non-target strings. This research focus on generating a model in the form of a state machine to recognize strings derived from the direction information of character's images. The state machine induction process has two steps. The first step is to generate the machine from the strings of each target character (positive training), and the second step is to adjust the machine to reject any other string (negative training). This state machine induction method that automatically learns from strings can be applied with other string patterns recognition apart from characters.
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