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dc.contributor.author李明唐en_US
dc.contributor.authorMing-Tang Leeen_US
dc.contributor.author胡竹生en_US
dc.contributor.authorJwu-Sheng Huen_US
dc.date.accessioned2014-12-12T01:14:45Z-
dc.date.available2014-12-12T01:14:45Z-
dc.date.issued2007en_US
dc.identifier.urihttp://140.113.39.130/cdrfb3/record/nctu/#GT009512630en_US
dc.identifier.urihttp://hdl.handle.net/11536/38339-
dc.description.abstract本論文提出一套結合適應性空間濾波與後濾波的方法進行語音強化。利用麥克風陣列訊號的空間資訊,以空間濾波方式對聲源方向純化語音,論文中採用成效較佳的Dahl’s濾波器。為了進一步純化語音,我們使用單聲道語音強化的方法進行後濾波。後濾波主要包含雜訊估測與增益函數兩部份,雜訊估測將分別使用長時間語音活動偵測與最小控制遞迴平均法,搭配以頻譜刪減法與對數頻譜幅值計算出之增益函數,並實際比較在高速公路雜訊與音樂雜訊下的純化效果。zh_TW
dc.description.abstractAn approach combined adaptive spatial filtering and post-filtering for speech enhancement is proposed in this thesis. Using the spatial information of microphone array signals, we purify the speech in the sound source direction by applying spatial filtering. For the spatial filter, we choose Dahl’s beamformer due to it’s relatively better performance. To further purify the speech, we use sigle-channel speech enhancement methods for post-filtering. Post-filtering mainly contains noise estimation and gain function parts. We will use long-term voice activity detection (LTVAD) and minima controlled recursive averaging (MCRA) for noise estimation respectively, cooperating with gain functions computed by spectral subtraction (SS) and log-spectral amplitude (LSA) algorithms. And we will compare the purification results under musical noise and noise from freeway.en_US
dc.language.isozh_TWen_US
dc.subject適應性空間濾波zh_TW
dc.subject後濾波zh_TW
dc.subjectDahl's濾波器zh_TW
dc.subject頻譜刪減zh_TW
dc.subject對數頻譜幅值zh_TW
dc.subjectadaptive spatial filteringen_US
dc.subjectpost-filteringen_US
dc.subjectDahl's beamformeren_US
dc.subjectSpectral Subtractionen_US
dc.subjectlog-spectral amplitudeen_US
dc.title結合適應性波束形成與後濾波進行語音強化zh_TW
dc.titleCombining adaptive beamforming and post-filtering for speech enhancementen_US
dc.typeThesisen_US
dc.contributor.department電控工程研究所zh_TW
Appears in Collections:Thesis


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