使用近似分段-字符串匹配的一般词识别

John T. Favata
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引用次数: 10

摘要

重点研究了基于近似笔划段/字符串匹配算法的孤立离线通用词识别问题。最近提出的几种词识别算法使用直接匹配笔画段(使用OCR估计)的策略来匹配每个词典词中的字符序列。这个想法在理想条件下非常有效;然而,许多应用程序需要在存在文档噪声、糟糕的手写和词典错误的情况下识别文本。这些因素需要仔细设计匹配策略,以便适度的任何形式的退化都不会导致识别失败。提出了一种从中等噪声和系统误差中鲁棒恢复的段串匹配算法。该算法是在一个完整的单词识别系统的背景下开发的,并作为其最后的后处理模块。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
General word recognition using approximate segment-string matching
Focuses on the problem of isolated off-line general word recognition using an approximate stroke-segment/string matching algorithm. Several recently proposed word recognition algorithms use the strategy of directly matching the stroke segments (with OCR estimates) to the sequence of characters in each lexicon word. This idea works very well under ideal conditions; however, many applications require the recognition of text in the presence of document noise, poor handwriting and lexicon errors. These factors require careful design of the matching strategy such that a moderate amount of any form of degradation does not cause a recognition failure. A segment-to-string matching algorithm is proposed which robustly recovers from moderate levels of noise and system errors. This algorithm is developed in the context of a complete word recognition system and serves as its final post-processing module.
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