Novel Approach to Segmentation of Handwritten Devnagari Word

Vandana M. Ladwani, L. Malik
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引用次数: 17

Abstract

This paper makes an attempt to segment the handwritten Devnagari words. Segmentation of script is essential for handwritten script recognition. Segmentation affects recognition so accurate segmentation is important for implementing OCR. Little work had been reported towards segmentation of handwritten text. Segmentation of handwritten words is a bit complicated as the shape of the handwritten characters is uncertain due to variability in writing styles. The proposed system carries out segmentation in hierarchical order. The system deploys the morphological operations of image processing for segmentation. Neighbourhood tracing algorithm is used for finding the segmented objects in the specific zones that correspond to constituent symbols of the Devnagari script. Segmentation accuracy is found to be 57% for segmentation of top modifiers and 55% for lower modifiers and 52% for characters in core zone.
手写体Devnagari词切分的新方法
本文试图对手写体德文格里文字进行分词。手写体分割是手写体识别的关键。分割影响识别,因此准确的分割对OCR的实现至关重要。关于手写文本分割的报道很少。由于书写风格的变化,手写字符的形状是不确定的,因此手写单词的分割有点复杂。该系统按层次顺序进行分割。该系统利用图像处理的形态学操作进行分割。邻域跟踪算法用于查找与Devnagari脚本组成符号对应的特定区域中的分割对象。结果表明,上修饰语的分割准确率为57%,下修饰语的分割准确率为55%,核心区字符的分割准确率为52%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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