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助听器反馈路径:数学模拟与实验验证。

The hearing aid feedback path: mathematical simulations and experimental verification.

作者信息

Egolf D P, Howell H C, Weaver K A, Barker D S

出版信息

J Acoust Soc Am. 1985 Nov;78(5):1578-87. doi: 10.1121/1.392795.

Abstract

Acoustic feedback in hearing aids has received little attention in the literature. Feedback occurs when stability conditions of the open-loop transfer function of an in situ hearing aid are violated. Solving the feedback problem will first require knowledge of the open-loop transfer function. Included in the open-loop transfer function is the acoustical path by which sound emanating from the earmold vent returns to the microphone (i.e., the feedback path). Reported herein are two different mathematical procedures for simulating transfer functions of the feedback path of an eyeglass-type hearing aid. In one procedure the vent exit was modeled as a point source of sound located on a flat plane, while it was treated as a point source on a sphere in the other. Results of laboratory experiments indicate that the mathematical models accurately predict those acoustic phenomena for which they were intended: point sources on plane and spherical baffles. Results of manikin experiments showed both models to be less accurate for simulating the feedback path around the human head. The maximum difference between experiment and theory was 6 dB at one frequency. Surprisingly, the flat-baffle model produced better agreement with experimental results than did the sphere model.

摘要

助听器中的声反馈在文献中很少受到关注。当原位助听器开环传递函数的稳定性条件被违反时,就会发生反馈。解决反馈问题首先需要了解开环传递函数。开环传递函数中包括从耳模通气孔发出的声音返回麦克风的声学路径(即反馈路径)。本文报道了两种不同的数学方法来模拟眼镜式助听器反馈路径的传递函数。在一种方法中,通气孔出口被建模为位于平面上的点声源,而在另一种方法中,它被视为球面上的点声源。实验室实验结果表明,数学模型能准确预测其预期的声学现象:平面和球形障板上的点声源。人体模型实验结果表明,两种模型在模拟人头周围的反馈路径时准确性都较低。在一个频率上,实验与理论之间的最大差异为6分贝。令人惊讶的是,平板障板模型比球面模型与实验结果的一致性更好。

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