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Knowledge-based partial matching: An efficient form classification method

Authors
Byun, YKim, JChoi, YKim, GLee, Y
Issue Date
Oct-2002
Publisher
SPRINGER-VERLAG BERLIN
Citation
GRAPHICS RECOGNITION: ALGORITHMS AND APPLICATIONS, v.2390, pp 25 - 35
Pages
11
Journal Title
GRAPHICS RECOGNITION: ALGORITHMS AND APPLICATIONS
Volume
2390
Start Page
25
End Page
35
URI
https://scholarworks.sookmyung.ac.kr/handle/2020.sw.sookmyung/16613
DOI
10.1007/3-540-45868-9_3
ISSN
0302-9743
Abstract
An efficient method of classifying form is proposed in this paper. Our method identifies a small number of matching areas by their distinctive images with respect to their layout structure and then form classification is performed by matching only these local regions. The process is summarized as follows. First, the form is partitioned into rectangular regions along the locations of lines of the forms. The disparity in each partitioned region of the comparing form images is measured. The penalty for each partitioned area is computed by using the pre-printed text, filled-in data, and the size of a partitioned area. The disparity and penalty are considered to compute the score to select final matching areas. By using our approach, the redundant matching areas are not processed and a feature vector of good quality can be extracted.
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공과대학 (소프트웨어학부(첨단))
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