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Perception-Based Personalization of Hearing Aids Using Gaussian Processes and Active Learning

机译:使用高斯过程和主动学习的基于感知的助听器个性化

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摘要

Personalization of multi-parameter hearing aids involves an initial fitting followed by a manual knowledge-based trial-and-error fine-tuning from ambiguous verbal user feedback. The result is an often suboptimal HA setting whereby the full potential of modern hearing aids is not utilized. This article proposes an interactive hearing-aid personalization system that obtains an optimal individual setting of the hearing aids from direct perceptual user feedback. Results obtained with ten hearing-impaired subjects show that ten to twenty pairwise user assessments between different settings—equivalent to 5-10 min—is sufficient for personalization of up to four hearing-aid parameters. A setting obtained by the system was significantly preferred by the subject over the initial fitting, and the obtained setting could be reproduced with reasonable precision. The system may have potential for clinical usage to assist both the hearing-care professional and the user.
机译:多参数助听器的个性化涉及到最初的安装,然后是来自含糊的口头用户反馈的基于知识的手动试错法微调。结果是HA设置常常不是最理想的,从而无法充分利用现代助听器的潜力。本文提出了一种交互式助听器个性化系统,该系统可从直接的感知用户反馈中获得最佳的助听器个人设置。从十个听力受损的受试者获得的结果表明,在不同设置之间进行十至二十次成对的用户评估(相当于5-10分钟),足以个性化最多四个助听器参数。与初始拟合相比,系统显着地优选由系统获得的设置,并且可以以合理的精度重现获得的设置。该系统可能具有临床用途的潜力,以协助听力保健专业人员和用户。

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