From contours to characters segmentation of cursive handwritten words with neural assistance

F. Kurniawan, A. Rehman, D. Mohamad
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引用次数: 5

Abstract

This paper presents a novel algorithm to resolve an open problem to correctly locating letter boundaries in off-line unconstrained cursive handwritten word images. The proposed algorithm is based on vertical contour analysis. Following preprocessing, during the course of pre-segmentation vertical contours are analyzed from right to left. Furthermore to improve accuracy of segmentation, trained ANN is employed to validate segment points. For fair analysis, experiments were performed on IAM benchmark database. Results obtained thus show that the proposed approach is capable to accurately locating the letter boundaries for unconstraint cursive handwritten words
从轮廓到字符的神经辅助草书手写体分割
本文提出了一种新的算法来解决离线无约束草书手写文字图像中字母边界的正确定位问题。该算法基于垂直轮廓分析。预处理后,在预分割过程中,从右向左分析垂直轮廓。为了提高分割精度,采用训练好的人工神经网络对分割点进行验证。为了公平分析,在IAM基准数据库上进行了实验。结果表明,该方法能够准确定位无约束草书手写字的字母边界
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