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An Investigation of Audibility Effects on Cochlear Implant Speech Perception Prediction

机译:可听度对人工耳蜗言语知觉预测的影响研究

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Output Signal to Noise Ratio (OSNR) is the Signal to Noise Ratio (SNR) at the output of a cochlear implant (CI) sound processor. Whereas other prediction metrics typically predict mean speech-in-noise test scores for a group of subjects, an OSNR-based model has been shown to accurately predict scores for individual CI recipients. The OSNR model was unable to predict scores for aggressive Ideal Binary Mask (IdBM) sound processing. This algorithm calculated Input Signal to Noise Ratio (ISNR), in each CI channel, and applied a gain function to suppress noise when a gain threshold was exceeded.The current study investigated the effect of IdBM processing on the separate speech and noise signals to determine whether audibility was affecting intelligibility. A novel metric, "OSNR and Power" (OSNRP), which combined the effect of the reduction in output speech power with OSNR, was proposed.It was found that the IdBM reduced the output speech level, likely causing audibility issues, at poor ISNRs. OSNRP accurately predicted individual speech-in-noise test scores for aggressive IdBM.The novel OSNRP metric has potential as a tool for calculating optimum configurations for sound processor parameter settings for individual CI recipients. We propose using a prescribed set of reference test conditions, the results of which can be utilized to predict outcomes when using alternative sound processing parameters and techniques, and to tailor them to the individual needs of individual CI recipients.
机译:输出信噪比(OSNR)是耳蜗植入(CI)声音处理器的输出处的信噪比(SNR)。尽管其他预测指标通常可以预测一组对象的平均噪声测试分数,但基于OSNR的模型已显示出可以准确预测单个CI接收者的分数。 OSNR模型无法预测积极的理想二进制掩码(IdBM)声音处理的分数。该算法计算每个CI通道的输入信噪比(ISNR),并应用增益函数来抑制超过增益阈值时的噪声。本研究研究了IdBM处理对单独的语音和噪声信号的影响,以确定听觉是否会影响清晰度。提出了一种新颖的指标“ OSNR and Power”(OSNRP),该指标结合了降低输出语音功率和OSNR的效果。发现,IdBM降低了ISNR较差时的输出语音水平,可能会引起可听性问题。 OSNRP可以准确地预测激进的IdBM的个体噪声测试分数。新颖的OSNRP度量标准可以作为一种工具来计算针对单个CI接收者的声音处理器参数设置的最佳配置。我们建议使用一组规定的参考测试条件,当使用其他声音处理参数和技术时,其结果可用于预测结果,并根据单个CI接收者的个性化需求进行调整。

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