Please use this identifier to cite or link to this item:
https://hdl.handle.net/1959.11/5686
Title: | Decompose-Threshold Approach to Handwriting Extraction in Degraded Historical Document Images | Contributor(s): | Yan, Chen (author); Leedham, Graham (author) | Publication Date: | 2004 | DOI: | 10.1109/IWFHR.2004.33 | Handle Link: | https://hdl.handle.net/1959.11/5686 | Abstract: | Historical documents contain important and interesting information. A number of techniques have previously been proposed for thresholding document images. In this paper a new thresholding structure called the decompose-threshold approach is proposed and compared against some existing global and local algorithms. The proposed approach is a local adaptive analysis method, which uses local feature vectors to find the best approach for thresholding a local area. Appropriate algorithm(s) are selected or combined automatically for specific types of document image under investigation. The original image is recursively broken down into sub-regions using quad-trees until an appropriate thresholding method can be applied to each of the sub-region. The algorithm has been evaluated by testing on 10 historical images obtained from the Library of Congress. Evaluation of the performance using 'recall' value demonstrates that the approach outperforms any existing single methods. | Publication Type: | Conference Publication | Conference Details: | IWFHR 2004: 9th International Workshop on Frontiers in Handwriting Recognition, Tokyo, Japan, 26th - 29th October, 2004 | Source of Publication: | Proceedings of the 9th International Workshop on Frontiers in Handwriting Recognition, p. 239-244 | Publisher: | Institute of Electrical and Electronics Engineers (IEEE) | Place of Publication: | Los Alamitos, United States of America | ISSN: | 1550-5235 | Fields of Research (FoR) 2008: | 080109 Pattern Recognition and Data Mining 080106 Image Processing |
Socio-Economic Objective (SEO) 2008: | 810107 National Security 890299 Computer Software and Services not elsewhere classified |
Peer Reviewed: | Yes | HERDC Category Description: | E1 Refereed Scholarly Conference Publication | Publisher/associated links: | http://trove.nla.gov.au/work/22250652 |
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Appears in Collections: | Conference Publication |
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