基于时刻特征的中文作者识别

Cheng-Lin Liu, Ru-Wei Dai, Ying-Jian Liu
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引用次数: 29

摘要

为了解决类(写作者)和对象(字符)不确定的写作者识别(WI)问题,提取物理意义明确、动态范围小的个体特征是一种很好的方法。本文提出了一种基于矩的汉字特征识别方法,该方法从汉字图像的几何矩中提取归一化的个体特征。提取的特征在平移、缩放和描边宽度下都是不变的。它们明确地对应于人类对形状的感知,并将它们的值分布在小的动态范围内。作者识别与验证实验验证了该方法的有效性,并取得了良好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extracting individual features from moments for Chinese writer identification
To solve the problem of writer identification (WI) with indeterminate classes (writers) and objects (characters), it is a good way to extract individual features with clear physical meanings and small dynamic ranges. In this paper, a new method named Moment-Based Feature Method to identify Chinese writers is presented in which normalized individual features are derived from geometric moments of character images. The extracted features are invariant under translation, scaling, and stroke-width. They are explicitly corresponding to human perception of shape and distribute their values in small dynamic ranges. Experiments of writer recognition and verification are implemented to demonstrate the efficiency of this method and promising results have been achieved.
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