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Recognition of Handwritten Character of Manipuri Script

机译:曼普利脚本手写特征的认识

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摘要

—In this paper a backpropagation neural network based handwritten characters (Mapum Mayek ) recognition system of Manipuri Script is investigated. This paper presents various steps involved in the recognition process. It begins with thresholding of gray level image into binarised image, then from the binarised image the character pattern is segmented using connected component analysis and from the resized character matrix, its probabilistic features and fuzzy features are extracted. Using these features the network is trained and recognition tests are performed. Experiments indicate that the proposed recognition system performs well with the combined features and is robust to the writing variations that exist between persons and for a single person at different instances, thus being promising for user independent character recognition.
机译:- 本文研究了一种基于BackProjagation的神经网络的手写字符(MAPUM Mayek)批识脚本脚本识别系统。本文介绍了识别过程中涉及的各种步骤。它从灰度级图像的阈值平移到分娩图像中,然后从分编图像使用连接的分量分析和来自调整大小的字符矩阵进行分段,提取其概率特征和模糊功能。使用这些功能,网络被训练并执行识别测试。实验表明,所提出的识别系统与组合特征良好地表现良好,并且对在不同实例的人与人之间存在的写入变化是强大的,因此对用户独立的字符识别有望。

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