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dc.contributor.author劉俊麟en_US
dc.contributor.author謝世福en_US
dc.date.accessioned2015-11-26T01:07:59Z-
dc.date.available2015-11-26T01:07:59Z-
dc.date.issued2014en_US
dc.identifier.urihttp://140.113.39.130/cdrfb3/record/nctu/#GT070060267en_US
dc.identifier.urihttp://hdl.handle.net/11536/73843-
dc.description.abstract雙聲道語音分離技術中是利用聲道間的強度差與相位差資料經統計分群後達到將混合聲音中分離出各別聲源的目的,而本篇論文內容針對雙麥克風接收的資料做時頻分析與機率統計並加入回授機制。經時頻分析後截取左右聲道強度平面以及聲道間的強度差、相位差平面,兩平面的資料以內部相關外部不相關的方式建立結合高斯機率模型,也就是獨立結合做的預分群演算法,而這些結合高斯機率模型的統計參數,可經由Expectation-Maximization EM演算法估計,最後以機率遮蔽模式從混合聲音分離出不同聲源。回授部分是藉此分離的聲源進一步幫助先前結合高斯機率模型的參數估計,以達更好的分離效果。最後以電腦模擬驗證吾人提出之方法相較於其他演算法在Signal-To-Distortion ratio(SDR)測試標準上皆有2dB以上的改善,且在錄音筆實錄測試上也有1dB以上的改善,證明此方法的實用性。zh_TW
dc.description.abstractBinaural source separation aims to isolate individual sound source from mixture by clustering interaural phase and level differences data. In this thesis, we perform statistical analysis of interaural spectrogram and incorporate feedback mechanism. A joint Gaussian Mixture Model (GMM) is built for binaural cues and the microphone intensities with various degrees of correlations. The GMM parameters can be estimated by Expectation-Maximization algorithm. Probabilistic masking follows GMM to separate sound sources. These estimated sound sources can be fedback to enhance EM estimation. Computer simulations show that our algorithm has at least 2dB improvement in signal-to-distortion ratio (SDR). In real tests, 1dB SDR improvement can be attained.en_US
dc.language.isozh_TWen_US
dc.subject雙聲道語音分離zh_TW
dc.subject強度差zh_TW
dc.subject相位差zh_TW
dc.subject左右聲道zh_TW
dc.subject結合高斯模型zh_TW
dc.subject預分群zh_TW
dc.subject回授zh_TW
dc.subjectBinaural Source Separationen_US
dc.subjectILDen_US
dc.subjectIPDen_US
dc.subjectmicrophone intensityen_US
dc.subjectGMMen_US
dc.subjectpre-Clusteren_US
dc.subjectFeedbacken_US
dc.title以聲道差與回授作語音分離之研究zh_TW
dc.titleSource Separation Based On Binaural Cues And Feedbacken_US
dc.typeThesisen_US
dc.contributor.department電信工程研究所zh_TW
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