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SpeakerSense: Energy Efficient Unobtrusive Speaker Identification on Mobile Phones

机译:扬声器:在手机上节能无引声扬声器识别

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Automatically identifying the person you are talking with using continuous audio sensing has the potential to enable many pervasive computing applications from memory assistance to annotating life logging data. However, a number of challenges, including energy efficiency and training data acquisition, must be addressed before unobtrusive audio sensing is practical on mobile devices. We built SpeakerSense, a speaker identification prototype that uses a heterogeneous multi-processor hardware architecture that splits computation between a low power processor and the phone's application processor to enable continuous background sensing with minimal power requirements. Using SpeakerSense, we benchmarked several system parameters (sampling rate, GMM complexity, smoothing window size, and amount of training data needed) to identify thresholds that balance computation cost with performance. We also investigated channel compensation methods that make it feasible to acquire training data from phone calls and an automatic segmentation method for training speaker models based on one-to-one conversations.
机译:自动识别您使用的使用连续音频感测的人有可能使许多普遍的计算应用程序能够从内存辅助到注释寿命记录数据。然而,必须在不引人注心的音频感测在移动设备上实用之前解决了许多挑战,包括能效和培训数据采集。我们构建了扬声器,一种扬声器识别原型,它使用异构的多处理器硬件架构,该校正原型是在低功耗处理器和手机的应用处理器之间分配计算,以使连续的电源要求进行连续背景感测。使用扬声器,我们基准测试了几个系统参数(采样率,GMM复杂性,平滑窗口大小和所需的培训数据量),以识别使用性能平衡计算成本的阈值。我们还调查了渠道补偿方法,使得从电话呼叫和自动分割方法获取培训数据的培训数据,这是一个基于一对一对话的训练讲话者模型。

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