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Enhanced Individualization of Head-Related Impulse Response Model in Horizontal Plane Based on Multiple Regression Analysis

机译:基于多元回归分析,增强了水平平面中的头部相关脉冲响应模型的个性化

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One key issue in modeling head-related impulse responses (HRIRs) is how to individualize HRIRs model so that it is suitable for a listener. The objective of this research is to establish multiple regression models between minimum phase HRIRs and the anthropometric parameters in order to individualize a given listener's HRIRs with his or her own anthropometric parameters. We modeled the entire minimum phase HRIRs in horizontal plane of 37 subjects using principal components analysis (PCA). The individual minimum phase HRIRs can be estimated adequately by a linear combination of ten orthonormal basis functions. We proposed an enhanced individualization method based on multiple regression analysis of weights of basis functions by utilizing eight anthropometric parameters. Our objective simulation's results show that the estimated minimum phase HRIRs have small error and can be perceived similarly as the measured ones. In addition, the subjective localization Performance of the estimated HRIRs is improved compared to the measured HRIRs.
机译:建模头相关脉冲响应(HRIRS)的一个关键问题是如何个性化HRIRS模型,以便它适用于倾听者。该研究的目的是在最小相位HRIR和人体测量参数之间建立多元回归模型,以便与他或她自己的人类测量参数来个性化给定的听众的HRIR。我们使用主成分分析(PCA)在37个受试者的水平平面中建模了​​整个最小相位的HRIR。各个最小相HRIR可以通过十个正式基本功能的线性组合来充分估计。我们提出了一种基于基于基于基础函数的重量分析来提高个性化方法,利用八个人类测量参数。我们的客观仿真结果表明,估计的最小阶段HRIR具有较小的错误,并且可以与测量的相似之处。此外,与测量的HRIR相比,估计的HRIR的主观定位性能得到改善。

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