Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability
碩士 === 國立高雄第一科技大學 === 電腦與通訊工程研究所 === 101 === This work proposes an algorithm that can effectively spot and recognize Arabic numbers from a sequence of fingertip trajectory images. The use of chain code probability (CCP) to represent the fingertip trajectory generally suffers from scaling and code ac...
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ndltd-TW-101NKIT56500012017-02-19T04:29:59Z http://ndltd.ncl.edu.tw/handle/54197345756529530892 Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability 使用區域鏈結碼機率之阿拉伯數字指尖軌跡辨識 Wei-Yu Wang 王偉昱 碩士 國立高雄第一科技大學 電腦與通訊工程研究所 101 This work proposes an algorithm that can effectively spot and recognize Arabic numbers from a sequence of fingertip trajectory images. The use of chain code probability (CCP) to represent the fingertip trajectory generally suffers from scaling and code accumulation problems. To handle these two problems, this work proposes a fingertip representation called local CCP (LCCP) which imposes local property to traditional CCP. As for spotting and recognizing fingertip trajectory, the windows with different lengths are applied to scan over the entire video sequence. The segments within the window have distance using template matching are considered as effective Arabic numbers. However, the same segment may correspond to several different Arabic numbs which is referred to as overlap problem. Therefore, the inclusion relation among Arabic numbers is used to resolve the overlap problem. In experiments, we validated our proposed algorithm by using 40 videos. The results show that the proposed algorithm using LCCP and inclusion relation outperforms the other ones in spotting and recognition accuracy. Shih-Shinh Huang 黃世勳 2013 學位論文 ; thesis 57 zh-TW |
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碩士 === 國立高雄第一科技大學 === 電腦與通訊工程研究所 === 101 === This work proposes an algorithm that can effectively spot and recognize Arabic numbers from a sequence of fingertip trajectory images. The use of chain code probability (CCP) to represent the fingertip trajectory generally suffers from scaling and code accumulation problems. To handle these two problems, this work proposes a fingertip representation called local CCP (LCCP) which imposes local property to traditional CCP. As for spotting and recognizing fingertip trajectory, the windows with different lengths are applied to scan over the entire video sequence. The segments within the window have distance using template matching are considered as effective Arabic numbers. However, the same segment may correspond to several different Arabic numbs which is referred to as overlap problem. Therefore, the inclusion relation among Arabic numbers is used to resolve the overlap problem. In experiments, we validated our proposed algorithm by using 40 videos. The results show that the proposed algorithm using LCCP and inclusion relation outperforms the other ones in spotting and recognition accuracy.
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Shih-Shinh Huang |
author_facet |
Shih-Shinh Huang Wei-Yu Wang 王偉昱 |
author |
Wei-Yu Wang 王偉昱 |
spellingShingle |
Wei-Yu Wang 王偉昱 Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability |
author_sort |
Wei-Yu Wang |
title |
Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability |
title_short |
Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability |
title_full |
Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability |
title_fullStr |
Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability |
title_full_unstemmed |
Fingertip Trajectory Recognition for Arabic Number Using Local Chain Code Probability |
title_sort |
fingertip trajectory recognition for arabic number using local chain code probability |
publishDate |
2013 |
url |
http://ndltd.ncl.edu.tw/handle/54197345756529530892 |
work_keys_str_mv |
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