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HRTF personalization based on artificial neural network in individual virtual auditory space

机译:在单个虚拟听觉空间中基于人工神经网络的HRTF个性化

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摘要

The synthesis of individual virtual auditory space (VAS) is an important and challenging task in virtual reality. One of the key factors for individual VAS is to obtain a set of individual head related transfer functions (HRTFs). A customization method based on back-propagation (BP) artificial neural network (ANN) is proposed to obtain an individual HRTF without complex measurement. The inputs of the neural network are the anthropometric parameters chosen by correlation analysis and the outputs are the characteristic parameters of HRTFs together with the interaural time difference (ITD). Objective simulation experiments and subjective sound localization experiments are implemented to evaluate the performance of the proposed method. Experiments show that the estimated non-individual HRTF has small mean square error, and has similar perception effect to the corresponding one obtained from the database. Furthermore, the localization accuracy of personalized HRTF is increased compared to the non-individual HRTF.
机译:单个虚拟听觉空间(VAS)的合成是虚拟现实中一项重要且具有挑战性的任务。单个VAS的关键因素之一是获得一组与个体头部相关的传递函数(HRTF)。提出了一种基于BP神经网络(ANN)的定制方法,以得到无需复杂测量的个体HRTF。神经网络的输入是通过相关分析选择的人体测量学参数,输出是HRTF的特征参数以及耳间时间差(ITD)。进行了客观模拟实验和主观声音定位实验,以评估该方法的性能。实验表明,估计的非个体HRTF的均方误差小,与从数据库中获得的对应个体具有相似的感知效果。此外,与非个人HRTF相比,个性化HRTF的定位精度有所提高。

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