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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >IMPROVEMENT OF HANDWRITTEN JAPANESE CHARACTER RECOGNITION USING WEIGHTED DIRECTION CODE HISTOGRAM
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IMPROVEMENT OF HANDWRITTEN JAPANESE CHARACTER RECOGNITION USING WEIGHTED DIRECTION CODE HISTOGRAM

机译:加权方向码直方图改进手写日语字符识别

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摘要

Several algorithms for preprocessing, feature extraction, pre-classification, and main classification are experimentally compared to improve the recognition accuracy of handwritten Japanese character recognition. The compared algorithms are three types of nonlinear normalization for the preprocessing, the discriminant analysis and the principal component analysis for the feature extraction, the minimum distance classifiers and the linear classifier for the high-speed pre-classification, and modified Bayes classifier and subspace method for the robust main classification. The performance of the recognition algorithm is fully tested using the ETL9B character database. The recognition accuracy of 99.15% at the recognition speed of eight characters per second is achieved. This accuracy is the best one ever reported for the database. (C) 1997 Pattern Recognition Society. Published by Elsevier Science Ltd. [References: 21]
机译:实验上比较了几种预处理,特征提取,预分类和主要分类的算法,以提高手写日语字符识别的识别精度。比较的算法为预处理的三种非线性归一化,特征提取的判别分析和主成分分析,高速预分类的最小距离分类器和线性分类器以及改进的贝叶斯分类器和子空间方法用于强大的主要分类。使用ETL9B字符数据库对识别算法的性能进行了全面测试。在每秒八个字符的识别速度下,实现了99.15%的识别精度。这种准确性是有史以来针对数据库报告的最佳准确性。 (C)1997模式识别学会。由Elsevier Science Ltd.发布[参考文献:21]

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