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The “UTDrive” in-vehicle voice activity detection system

机译:“ UTDrive”车载语音活动检测系统

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In this study, we specifically address the problem of in-vehicle voice activity detection (VAD), which has a significant importance for the speech controlled intelligent vehicle. A novel VAD system is proposed based on microphone array beam- forming and discriminative Gaussian mixture model. As a binary classification problem, the features and classifiers are explored under the in-vehicle acoustic environment. Using microphone array, we show that the spatial power ratio can serve as an effective feature for speech activity detection. Further, a discriminative training based Gaussian mixture model (GMM) classifier is employed to enhance the VAD performance in terms of receiver operating characteristics (ROC). Compared to the conventional VAD systems, the proposed VAD system presents a novel and robust performance against various in-vehicle noisy scenarios from the UTDrive project.
机译:在这项研究中,我们专门解决了车载语音活动检测(VAD)的问题,该问题对于语音控制智能车辆具有重要意义。提出了一种基于麦克风阵列波束形成和判别高斯混合模型的新型VAD系统。作为二元分类问题,在车内声学环境下研究了特征和分类器。使用麦克风阵列,我们表明空间功率比可以用作语音活动检测的有效功能。此外,采用基于判别训练的高斯混合模型(GMM)分类器来增强VAD在接收器工作特性(ROC)方面的性能。与传统的VAD系统相比,拟议的VAD系统针对UTDrive项目中的各种车载噪声场景提供了一种新颖而强大的性能。

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