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Feature selection algorithms for the generation of multiple classifier systems and their application to handwritten word recognition

机译:用于多分类器系统生成的特征选择算法及其在手写单词识别中的应用

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摘要

The study of multiple classifier systems has become an area of intensive research in pattern recognition recently. Also in handwriting recognition, systems combining several classifiers have been investigated. In this paper new methods for the creation of classifier ensembles based on feature selection algorithms are introduced. Those new methods are evaluated and compared to existing approaches in the context of handwritten word recognition, using a hidden Markov model recognizer as basic classifier.
机译:最近,多分类器系统的研究已经成为模式识别领域的深入研究领域。同样在手写识别中,已经研究了结合多个分类器的系统。本文介绍了一种基于特征选择算法的分类器集成创建新方法。使用隐藏的马尔可夫模型识别器作为基本分类器,对这些新方法进行了评估,并与手写单词识别环境中的现有方法进行了比较。

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