OCR的托勒密模型

S. Veeramachaneni, G. Nagy
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引用次数: 6

摘要

在风格约束的分类中,通常每种风格和类别只有几个样本,并且训练集和测试集中风格之间的对应关系是未知的。为了避免对分类器参数的严重错误估计,因此准确地建模模式分布是很重要的。在适合符号模式的特征空间中,我们为直观吸引人的假设提供了经验证据,用于(1)类意味的四面体配置表明线性风格自适应分类,(2)通过考虑模式相对于其他类的方向的不对称配置来改进分类边界的估计,以及(3)模式相关的风格可变性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards a ptolemaic model for OCR
In style-constrained classification often there are onlya few samples of each style and class, and the correspondencesbetween styles in the training set and the test setare unknown. To avoid gross misestimates of the classifierparameters it is therefore important to model the patterndistributions accurately. We offer empirical evidence for intuitivelyappealing assumptions, in feature spaces appropriatefor symbolic patterns, for (1) tetrahedral configurationsof class means that suggests linear style-adaptive classification,(2) improved estimates of classification boundariesby taking into account the asymmetric configuration of thepatterns with respect to the directions toward other classes,and (3) pattern-correlated style variability.
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