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首页> 外文期刊>International Journal on Document Analysis and Recognition >Architectures for detecting and solving conflicts: two-stage classification and support vector classifiers
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Architectures for detecting and solving conflicts: two-stage classification and support vector classifiers

机译:用于检测和解决冲突的体系结构:两阶段分类和支持向量分类器

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摘要

In the majority of cases, a properly trained classifier or ensemble of classifiers may yield acceptable recognition results. However, in some cases, recognition will fail due to typical conflicts that are encountered, like the confusion between [A] and [H] or [U] and [V]. In this paper, two architectures for the recognition of handwritten text are described. The key issue for each of these systems is to detect the event of a possible conflict and subsequently attempt to solve that particular problem. Both systems exploit a two-stage classification method. In the event that the first-stage classifiers are not certain about the result, the second-stage system engages a set of support vector classifiers for refining the output hypothesis.
机译:在大多数情况下,训练有素的分类器或分类器集合可能会产生可接受的识别结果。但是,在某些情况下,识别会由于遇到的典型冲突而失败,例如[A]和[H]或[U]和[V]之间的混淆。在本文中,描述了两种用于识别手写文本的体系结构。这些系统中的每一个的关键问题是检测可能发生冲突的事件,然后尝试解决该特定问题。两种系统都采用两阶段分类方法。如果第一阶段分类器不确定结果,则第二阶段系统会使用一组支持向量分类器来完善输出假设。

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