Word Spotting of Handwritten Hindi Scripts by Circular Histogram of Oriented Displacement (CHOD) Features

E. O. Omayio, I. Sreedevi, J. Panda
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引用次数: 0

Abstract

This paper presents a segmentation-based word spotting technique for handwritten Hindi scripts using newly proposed shape descriptor called circular histogram of oriented displacement (CHOD). A word spotting model is developed by training multi-layer perceptron (MLP) with CHOD features. Metrics of evaluation used are k-precision (kPr) and mean average precision (MAP). The proposed technique has been evaluated on two datasets consisting of segmented handwritten Hindi (Devanagari) word images and has posted very good performance. This is an indication of CHOD features having good discriminative powers. The proposed technique has been compared with other techniques for the same datasets and found to compare very well.
面向位移圆形直方图特征的手写体印地语单词识别
本文提出了一种基于分词的手写体印地语文字识别技术,该技术采用了一种新提出的形状描述符圆形定向位移直方图(CHOD)。通过训练具有CHOD特征的多层感知器(MLP),建立了单词识别模型。使用的评价指标是k精度(kPr)和平均精度(MAP)。所提出的技术已经在两个由分段的手写印地语(Devanagari)单词图像组成的数据集上进行了评估,并发布了非常好的性能。这表明CHOD特征具有良好的判别能力。对于相同的数据集,已经将所提出的技术与其他技术进行了比较,发现比较非常好。
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