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Integrating cognitive and peripheral factors in predicting hearing-aid processing effectiveness

机译:整合认知和外围因素以预测助听器的加工效果

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摘要

Individual factors beyond the audiogram, such as age and cognitive abilities, can influence speech intelligibility and speech quality judgments. This paper develops a neural network framework for combining multiple subject factors into a single model that predicts speech intelligibility and quality for a nonlinear hearing-aid processing strategy. The nonlinear processing approach used in the paper is frequency compression, which is intended to improve the audibility of high-frequency speech sounds by shifting them to lower frequency regions where listeners with high-frequency loss have better hearing thresholds. An ensemble averaging approach is used for the neural network to avoid the problems associated with overfitting. Models are developed for two subject groups, one having nearly normal hearing and the other mild-to-moderate sloping losses.
机译:听力图之外的个人因素,例如年龄和认知能力,可能会影响语音清晰度和语音质量判断。本文开发了一种神经网络框架,用于将多个主题因素组合到一个模型中,该模型可预测非线性助听器处理策略的语音清晰度和质量。本文中使用的非线性处理方法是频率压缩,其目的是通过将高频语音转换为低频区域,使高频损失的听众具有更好的听觉阈值,从而提高其可听性。集成平均方法用于神经网络,以避免与过拟合相关的问题。针对两个受试者群体开发了模型,一个受试者的听力接近正常,另一个受试者的听力损失为中度至中度。

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