支持向量机在链码字符识别中的应用

Dipti Singh, Mohd. Aamir Khan, A. Bansal, Neha Bansal
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引用次数: 34

摘要

人工智能、模式识别和计算机视觉在电子和图像处理领域具有重要意义。光学字符识别(OCR)是模式识别的主要方面之一,自诞生以来发展迅速。OCR是一种从光学数据中识别可读字符并将其转换为数字形式的系统。为此目的,使用不同的方法开发了各种方法。本文讨论了现代OCR系统的总体结构,并对各个模块进行了详细的讨论。采用摩尔邻域跟踪提取字符边界,然后采用链式法则提取特征。在字符识别的分类阶段,对支持向量机进行训练并应用于合适的实例。
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An application of SVM in character recognition with chain code
Artificial intelligence, pattern recognition and computer vision has a significant importance in the field of electronics and image processing. Optical character recognition (OCR) is one of the main aspects of pattern recognition and has evolved greatly since its beginning. OCR is a system which recognized the readable characters from optical data and converts it into digital form. Various methodologies have been developed for this purpose using different approaches. In this paper, general architecture of modern OCR system with details of each module is discussed. We applied Moore neighborhood tracing for extracting boundary of characters and then chain rule for feature extraction. In the classification stage for character recognition, SVM is trained and is applied on suitable example.
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