A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation

碩士 === 輔仁大學 === 資訊工程學系碩士班 === 101 === The Kleine-Levin syndrome is a rare sleep disorder to predispose young boys. Recurrent hypersomnia and cognitive or abnormal behavior are the common symptoms of the patients. In clinical, the signals of polysomnography and multiple sleep latency tests can not d...

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Main Authors: Yang hsiang-chieh, 楊祥杰
Other Authors: Hsu chieh-chang
Format: Others
Language:zh-TW
Published: 2013
Online Access:http://ndltd.ncl.edu.tw/handle/43880201996572869983
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spelling ndltd-TW-101FJU003960692016-05-22T04:33:29Z http://ndltd.ncl.edu.tw/handle/43880201996572869983 A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation 利用腦電圖頻率變異偵測系統協助診斷克萊列文氏症 Yang hsiang-chieh 楊祥杰 碩士 輔仁大學 資訊工程學系碩士班 101 The Kleine-Levin syndrome is a rare sleep disorder to predispose young boys. Recurrent hypersomnia and cognitive or abnormal behavior are the common symptoms of the patients. In clinical, the signals of polysomnography and multiple sleep latency tests can not diagnose the disease. Actually, the pathophysiology mechanism and diagnostic criterion of the Kleine-Levin syndrome are not clear and definded easily at the present time. Therefore, how to establish a systematic approach to help the physicians to identify the patients with Kleine-Levin syndrome is a necessary task. This paper introduces a Kleine-Levin syndrome detection system based on Electroencephalogram frequency variation. The system uses the electroencephalogram and physiological signals of the patients with Kleine-Levin syndrome to conduct feature extraction. The fuzzy clustering algorithm is applied to help the physicians to examination of the features. Experimental results show that the system can precisely identify the patients during Kleine-Levin syndrome attack period. Keywords: Kleine-Levin syndrome, polysomnography, electroencephalogram, feature extraction, fuzzy clustering Hsu chieh-chang Huang yu-shu 許見章 黃玉書 2013 學位論文 ; thesis 29 zh-TW
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language zh-TW
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description 碩士 === 輔仁大學 === 資訊工程學系碩士班 === 101 === The Kleine-Levin syndrome is a rare sleep disorder to predispose young boys. Recurrent hypersomnia and cognitive or abnormal behavior are the common symptoms of the patients. In clinical, the signals of polysomnography and multiple sleep latency tests can not diagnose the disease. Actually, the pathophysiology mechanism and diagnostic criterion of the Kleine-Levin syndrome are not clear and definded easily at the present time. Therefore, how to establish a systematic approach to help the physicians to identify the patients with Kleine-Levin syndrome is a necessary task. This paper introduces a Kleine-Levin syndrome detection system based on Electroencephalogram frequency variation. The system uses the electroencephalogram and physiological signals of the patients with Kleine-Levin syndrome to conduct feature extraction. The fuzzy clustering algorithm is applied to help the physicians to examination of the features. Experimental results show that the system can precisely identify the patients during Kleine-Levin syndrome attack period. Keywords: Kleine-Levin syndrome, polysomnography, electroencephalogram, feature extraction, fuzzy clustering
author2 Hsu chieh-chang
author_facet Hsu chieh-chang
Yang hsiang-chieh
楊祥杰
author Yang hsiang-chieh
楊祥杰
spellingShingle Yang hsiang-chieh
楊祥杰
A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation
author_sort Yang hsiang-chieh
title A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation
title_short A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation
title_full A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation
title_fullStr A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation
title_full_unstemmed A Kleine-Levin Syndrome Detection System based on Electroencephalogram Frequency Variation
title_sort kleine-levin syndrome detection system based on electroencephalogram frequency variation
publishDate 2013
url http://ndltd.ncl.edu.tw/handle/43880201996572869983
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