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    题名: Handwritten numeral recognition based on simplified structural classification and fuzzy memberships
    作者: Jou, Chichang;Lee, Hung-Chang
    贡献者: 淡江大學資訊管理學系
    关键词: Handwritten numeral recognition;Feature extraction;Structural classification;Fuzzy memberships
    日期: 2009-11
    上传时间: 2011-10-23 13:16:21 (UTC+8)
    出版者: Elsevier Ltd
    摘要: Previous handwritten numeral recognition algorithms applied structural classification to extract geometric primitives that characterize each image, and then utilized artificial intelligence methods, like neural network or fuzzy memberships, to classify the images. We propose a handwritten numeral recognition methodology based on simplified structural classification, by using a much smaller set of primitive types, and fuzzy memberships. More specifically, based on three kinds of feature points, we first extract five kinds of primitive segments for each image. A fuzzy membership function is then used to estimate the likelihood of these primitives being close to the two vertical boundaries of the image. Finally, a tree-like classifier based on the extracted feature points, primitives and fuzzy memberships is applied to classify the numerals. With our system, handwritten numerals in NIST Special Database 19 are recognized with correct rate between 87.33% and 88.72%.
    關聯: Expert Systems with Applications 36(10), p.11858-11863
    DOI: 10.1016/j.eswa.2009.04.025
    显示于类别:[資訊管理學系暨研究所] 期刊論文

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