2006
DOI: 10.1117/12.641229
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<title>Partitioning of the degradation space for OCR training</title>

Abstract: Generally speaking optical character recognition algorithms tend to perfonn better when presented with homogeneous data. This paper studies a method that is designed to increase the homogeneity of training data, based on an understanding of the types of degradations that occur during the printing and scanning process, and how these degradations affect the homogeneity of the data. While it has been shown that dividing the degradation space by edge spread improves recognition accuracy over dividing the degradati… Show more

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