Ziegelwanger Harald, Majdak Piotr, Kreuzer Wolfgang
Acoustics Research Institute, Austrian Academy of Sciences, Wohllebengasse 12-14, A-1040 Vienna, Austria.
J Acoust Soc Am. 2015 Jul;138(1):208-22. doi: 10.1121/1.4922518.
Head-related transfer functions (HRTFs) can be numerically calculated by applying the boundary element method on the geometry of a listener's head and pinnae. The calculation results are defined by geometrical, numerical, and acoustical parameters like the microphone used in acoustic measurements. The scope of this study was to estimate requirements on the size and position of the microphone model and on the discretization of the boundary geometry as triangular polygon mesh for accurate sound localization. The evaluation involved the analysis of localization errors predicted by a sagittal-plane localization model, the comparison of equivalent head radii estimated by a time-of-arrival model, and the analysis of actual localization errors obtained in a sound-localization experiment. While the average edge length (AEL) of the mesh had a negligible effect on localization performance in the lateral dimension, the localization performance in sagittal planes, however, degraded for larger AELs with the geometrical error as dominant factor. A microphone position at an arbitrary position at the entrance of the ear canal, a microphone size of 1 mm radius, and a mesh with 1 mm AEL yielded a localization performance similar to or better than observed with acoustically measured HRTFs.
头部相关传递函数(HRTFs)可以通过将边界元方法应用于听者头部和耳廓的几何形状进行数值计算。计算结果由几何、数值和声学参数定义,如声学测量中使用的麦克风。本研究的范围是估计麦克风模型的尺寸和位置以及边界几何形状作为三角形多边形网格的离散化对精确声音定位的要求。评估包括分析矢状面定位模型预测的定位误差、比较到达时间模型估计的等效头部半径以及分析在声音定位实验中获得的实际定位误差。虽然网格的平均边长(AEL)对横向维度的定位性能影响可忽略不计,但矢状面的定位性能在AEL较大时会下降,几何误差是主要因素。耳道入口处任意位置的麦克风、半径为1毫米的麦克风尺寸以及AEL为1毫米的网格产生的定位性能与声学测量的HRTFs观察到的相似或更好。