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Binaural Estimation of Sound Source Distance via the Direct-to-Reverberant Energy Ratio for Static and Moving Sources

机译:静源和移动源通过直接与余量能量比进行声源距离的双耳估计

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摘要

One of the principal cues believed to be used by listeners to estimate the distance to a sound source is the ratio of energies along the direct and indirect paths to the receiver. In essence, this “direct-to-reverberant” energy ratio reveals the absolute distance component of the direct energy by normalizing by what is assumed to be distance-independent reverberant energy. Earlier approaches to direct-to-reverberant energy ratio calculation made use of the estimated room impulse response, but these techniques are computationally expensive and inaccurate in practice. This paper proposes and evaluates an alternative approach which uses binaural signals to segregate energy arriving from the estimated direction of the direct source from that arriving from other directions, employing a novel binaural equalization-cancellation technique. The system is integrated with a probabilistic inference framework, particle filtering, to handle the nonstationarity of energy-based measurements. The algorithm is capable of using reverberation to estimate source distance in large rooms with errors of less than 1 m for static sources and 1.5–3.5 m for sources with varying degrees of motion complexity. Model performance can be accounted for largely in terms of a competition between auditory horizon and source energy fluctuation effects.
机译:相信被听众用来估计到声源距离的主要线索之一是沿着直接路径和间接路径到达接收器的能量之比。本质上,这种“直接混响”能量比通过假设被认为是与距离无关的混响能量进行归一化,从而揭示了直接能量的绝对距离分量。较早的直接到混响能量比的计算方法是使用估计的房间脉冲响应,但是这些技术在计算上昂贵且在实践中不准确。本文提出并评估了另一种方法,该方法使用双耳信号将来自直接源估计方向的能量与来自其他方向的能量分离,并采用一种新颖的双耳均衡消除技术。该系统与概率推理框架(粒子过滤)集成在一起,可以处理基于能量的测量的非平稳性。该算法能够使用混响来估计大型房间中的信号源距离,其中静态信号源的误差小于1 m,而运动复杂度不同的信号源的误差小于1.5–3.5 m。模型的性能很大程度上取决于听觉范围与源能量波动效应之间的竞争。

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