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Developing #x201C;voice care#x201D;: Real-time methods for event recognition and localization based on acoustic cues

机译:开发“语音护理”:基于声音提示的事件识别和定位的实时方法

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This paper presents methods for sound recognition in a living space and ways to track the location of the sound sources. Algorithms were developed so sound recognition and localization can both be performed in real time. The sound recognition method is based on Gaussian mixture modeling with outlier rejection. The sound source localization method is based on multiple signal classification (MUSIC) and it borrows the idea of particle filtering to confine the estimation error. Estimates of the sound source location can be successively refined by Kalman filtering. The recognition method was tested with real recordings and achieved > 90% of accuracy in distinguishing 8 classes of sounds while keeping both the false-acceptance and the false-rejection rates below 20%. The localization method was tested in real time and demonstrated the capabilities to track a sound source moving at about 0.3 m/s. These results indicate that the methods, when integrated, can be deployed to the home for acoustic event detection purposes.
机译:本文介绍了在居住空间中进行声音识别的方法以及跟踪声源位置的方法。开发了算法,因此可以实时执行声音识别和定位。声音识别方法基于具有离群值抑制的高斯混合模型。声源定位方法是基于多信号分类(MUSIC)的,它借鉴了粒子滤波的思想来限制估计误差。声源位置的估计值可以通过卡尔曼滤波依次完善。识别方法经过真实录音测试,在区分8种声音的同时,将错误接受率和拒绝拒绝率均保持在20%以下,从而达到了> 90%的准确率。该定位方法经过了实时测试,并展示了跟踪以约0.3 m / s的速度移动声源的能力。这些结果表明,这些方法集成后可以部署到家庭中,以进行声音事件检测。

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