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Identification of Virtual Receiver Array Geometries that Minimize Audibility of Numerical Dispersion in Binaural Auralizations of Finite Difference Time Domain Simulations

机译:识别虚拟接收器阵列几何形状,其最小化有限差分时间域模拟的双耳Auratization中数值色散的可听性

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This paper presents a perceptual evaluation of numerical dispersion in free-field headphone-based head-tracked binaural auralizations of finite difference time domain (FDTD) simulations. The simulated pressure, captured by virtual volumetric receiver arrays, is used to perform a spherical harmonics decomposition of the sound field and generate binaural signals. These binaural signals are compared perceptually to dispersion error-free binaural signals in a listening experiment designed using a duo-trio paradigm. The aim of the present work is to identify the size and density of the receiver array minimizing the audibility of numerical dispersion in the generated binaural signals. The spherical harmonics order was chosen to be 12 for the spatial decomposition. The overall reconstruction error, defined as the absolute value of the difference between the dispersion error-free and FDTD-simulated left-ear magnitude spectrum, was used as an objective metric to measure the spectral differences between the two signals. The listening experiment results show that this error does not correlate with the discrimination rates of the subjects. These results therefore suggest that this error does not suffice to describe the perceptual aspects introduced by numerical dispersion in the free-field dynamic binaural auralizations presented in the listening experiment. The results also show that increasing the receiver density for a fixed array size does not necessarily render numerical dispersion inaudible in the auralizations. Five out of 27 volumetric arrays led to FDTD-simulated binaural auralizations indistinguishable from the dispersion error-free binaural auralizations.
机译:本文介绍了有限差分时域(FDTD)模拟的自由场耳机的头部跟踪双链球菌的数值分散的感知评估。由虚拟体积接收器阵列捕获的模拟压力用于执行声场的球面谐波分解并产生双耳信号。将这些双耳信号感知在使用Duo-Trio范式设计的聆听实验中的分散无差无差异双耳信号。本作工作的目的是识别接收器阵列的尺寸和密度,从而最小化产生的双耳信号中数值分散的可听性。球形谐波顺序被选为12用于空间分解。整体重建误差定义为色散差无差和模拟左耳幅度谱之间的分散差和模拟左耳幅度谱之间的差异的绝对值,以测量两个信号之间的光谱差异。听力实验结果表明,此错误与受试者的歧视率无关。因此,这些结果表明,该错误不足以描述在听诊实验中呈现的自由场动态双耳透明度中通过数值分散引入的感知方面。结果还表明,增加固定阵列尺寸的接收器密度不一定在图像中不一定会使数字分散在图像中不清楚。 27个容量阵列中的五个导致FDTD模拟的双耳Auralizations与无差异无滤音的双耳Auralizations无法区分。

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