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DC Field | Value | Language |
---|---|---|
dc.contributor.author | Payungsak Kasemsumran | en_US |
dc.contributor.author | Sansanee Auephanwiriyakul | en_US |
dc.contributor.author | Nipon Theera-Umpon | en_US |
dc.date.accessioned | 2018-09-05T02:57:34Z | - |
dc.date.available | 2018-09-05T02:57:34Z | - |
dc.date.issued | 2016-03-23 | en_US |
dc.identifier.other | 2-s2.0-84966534385 | en_US |
dc.identifier.other | 10.1109/KST.2016.7440531 | en_US |
dc.identifier.uri | https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84966534385&origin=inward | en_US |
dc.identifier.uri | http://cmuir.cmu.ac.th/jspui/handle/6653943832/55525 | - |
dc.description.abstract | © 2016 IEEE. A string grammar fuzzy K-nearest neighbor is developed by incorporating 2 types of membership value into string grammar K-nearest neighbor. We apply these two string grammar fuzzy K-nearest neighbors in the face recognition system. The system provides 99.25%, 99.75%, 79.57%, 93.85%, and 100% in ORL, MIT-CBCL, Georgia Tech, FEI and JAFFE databases, respectively. Although, the results are satisfied, there are some limitations on the system. It is not scale-invariant. Also, the Levenshtein distance might create misperception between strings that are actually far apart but the calculated distance is small. | en_US |
dc.subject | Computer Science | en_US |
dc.subject | Medicine | en_US |
dc.subject | Social Sciences | en_US |
dc.title | Face recognition using string grammar fuzzy K-nearest neighbor | en_US |
dc.type | Conference Proceeding | en_US |
article.title.sourcetitle | 2016 8th International Conference on Knowledge and Smart Technology, KST 2016 | en_US |
article.stream.affiliations | Chiang Mai University | en_US |
Appears in Collections: | CMUL: Journal Articles |
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