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A Fuzzy Matching based Image Classification System for Printed and Handwritten Text Documents

机译:基于模糊匹配的印刷和手写文本文档图像分类系统

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摘要

This article proposes a bi-leveled image classification system to classify printed and handwritten English documents into mutually exclusive predefined categories. The proposed system follows the steps of preprocessing, segmentation, feature extraction, and SVM based character classification at level 1, and word association and fuzzy matching based document classification at level 2. The system architecture and its modular structure discuss various task stages and their functionalities. Further, a case study on document classification is discussed to show the internal score computations of words and keywords with fuzzy matching. The experiments on proposed system illustrate that the system achieves promising results in the time-efficient manner and achieves better accuracy with less computation time for printed documents than handwritten ones. Finally, the performance of the proposed system is compared with the existing systems and it is observed that proposed system performs better than many other systems.
机译:本文提出了一种双级图像分类系统,可以将印刷和手写的英语文档分类为互斥的预定义类别。拟议的系统遵循步骤1的预处理,分段,特征提取和基于SVM的字符分类,以及级别2的基于单词关联和模糊匹配的文档分类。系统体系结构及其模块化结构讨论了各个任务阶段及其功能。 。此外,讨论了一个有关文档分类的案例研究,以显示具有模糊匹配的单词和关键字的内部得分计算。所提出的系统上的实验表明,该系统以省时的方式获得了令人满意的结果,并且与手写文档相比,在打印文档的计算时间更少的情况下实现了更高的准确性。最后,将所提出的系统的性能与现有系统进行比较,并且观察到所提出的系统的性能优于许多其他系统。

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