博碩士論文 107521075 完整後設資料紀錄

DC 欄位 語言
DC.contributor電機工程學系zh_TW
DC.creator藍子鈞zh_TW
DC.creatorZih-Jyun Lanen_US
dc.date.accessioned2020-7-29T07:39:07Z
dc.date.available2020-7-29T07:39:07Z
dc.date.issued2020
dc.identifier.urihttp://ir.lib.ncu.edu.tw:88/thesis/view_etd.asp?URN=107521075
dc.contributor.department電機工程學系zh_TW
DC.description國立中央大學zh_TW
DC.descriptionNational Central Universityen_US
dc.description.abstract本論文基於時間序列計算相關係數,用於偵測想像運動(Motor Imagery, MI)開始時間,擷取有效的腦電圖(Electroencephalography, EEG)訊號,提出方法利用?波的相關係數,能夠找到有效EEG 訊號的起始時間點。因而降低計算負擔並有效減少共空間形樣法(Common Spatial Patterns, CSP)特徵提取的資料量大小,最後使用支持向量機(Support Vector Machine, SVM)達成分類準確度的提升。此外,提出方法在腦機介面(Brain-Computer Interface, BCI)的應用上,結合虛擬實境(Virtual Reality, VR)提出偵測想像運動的演算法。zh_TW
dc.description.abstractThe thesis, based on time series, calculates the correlation coefficient, and then detects the start time of motor imagery (MI). Moreover, the thesis proposes a method to capture the effective Electroencephalography (EEG) signal. Then using the correlation coefficient of the ? wave, the method could find out the starting position of the effective EEG signal. Therefore, it dramatically reduces the amount of EEG data, which effectively reduces the computation load for feature extracted by common spatial patterns (CSP). Finally support vector machine (SVM) is used to improve the classification accuracy. Furthermore, in the application of brain-computer interface (BCI) combined with virtual reality (VR), an algorithm for detecting MI is demonstrated.en_US
DC.subject腦電圖zh_TW
DC.subject腦機介面zh_TW
DC.subject想像運動zh_TW
DC.subject相關係數zh_TW
DC.subject共同空間形樣法zh_TW
DC.subject支持 向量機zh_TW
DC.subject虛擬實境zh_TW
DC.subjectElectroencephalographyen_US
DC.subjectBrain-computer interfaceen_US
DC.subjectMotor imageryen_US
DC.subjectCorrelation coefficienten_US
DC.subjectCommon spatial patternsen_US
DC.subjectSupport vector machineen_US
DC.subjectVirtual realityen_US
DC.title基於腦波相關係數方法提取有效想像運動腦波zh_TW
dc.language.isozh-TWzh-TW
DC.titleEffective MI Brain Wave Extraction based on Correlation Coefficient Methoden_US
DC.type博碩士論文zh_TW
DC.typethesisen_US
DC.publisherNational Central Universityen_US

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