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A Trainable Hearing Aid Algorithm Reflecting Individual Preferences for Degree of Noise-Suppression Input Sound Level and Listening Situation

机译:一种可训练的助听器算法可反映出个人对降噪程度输入声级和聆听情况的偏好

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摘要

Objectives In an effort to improve hearing aid users’ satisfaction, recent studies on trainable hearing aids have attempted to implement one or two environmental factors into training. However, it would be more beneficial to train the device based on the owner’s personal preferences in a more expanded environmental acoustic conditions. Our study aimed at developing a trainable hearing aid algorithm that can reflect the user’s individual preferences in a more extensive environmental acoustic conditions (ambient sound level, listening situation, and degree of noise suppression) and evaluated the perceptual benefit of the proposed algorithm.
机译:目的为了提高助听器用户的满意度,最近有关可训练助听器的研究试图将一种或两种环境因素纳入训练中。但是,根据所有者的个人喜好在更扩展的环境声学条件下对设备进行培训会更加有益。我们的研究旨在开发一种可训练的助听器算法,该算法可以在更广泛的环境声学条件(环境声级,聆听情况和噪声抑制程度)中反映用户的个人喜好,并评估该算法的感知效益。

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