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Learning sound location from a single microphone

机译:通过单个麦克风了解声音位置

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摘要

We consider the problem of estimating the incident angle of a sound, using only a single microphone. The ability to perform monaural (single-ear) localization is important to many animals; indeed, monaural cues are also the primary method by which humans decide if a sound comes from the front or back, as well as estimate its elevation. Such monaural localization is made possible by the structure of the pinna (outer ear), which modifies sound in a way that is dependent on its incident angle. In this paper, we propose a machine learning approach to monaural localization, using only a single microphone and an ldquoartificial pinnardquo (that distorts sound in a direction-dependent way). Our approach models the typical distribution of natural and artificial sounds, as well as the direction-dependent changes to sounds induced by the pinna. Our experimental results also show that the algorithm is able to fairly accurately localize a wide range of sounds, such as human speech, dog barking, waterfall, thunder, and so on. In contrast to microphone arrays, this approach also offers the potential of significantly more compact, as well as lower cost and power, devices for sounds localization.
机译:我们考虑仅使用单个麦克风来估计声音的入射角的问题。对许多动物来说,执行单耳(单耳)定位的能力很重要。的确,单声道提示也是人类确定声音是从正面还是从背面发出并估计其高度的主要方法。耳廓(外耳)的结构使这种单耳定位成为可能,耳廓的结构根据其入射角来修改声音。在本文中,我们提出了一种仅使用单个麦克风和ldquoartificial pinnardquo(以与方向相关的方式使声音失真)的单声道定位的机器学习方法。我们的方法模拟了自然声音和人造声音的典型分布,以及耳廓产生的声音的方向相关变化。我们的实验结果还表明,该算法能够相当准确地定位各种声音,例如人类语音,狗吠,瀑布声,雷声等。与麦克风阵列相比,这种方法还提供了潜力,使声音定位的设备更紧凑,成本更低,功耗更低。

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