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Accurate detection of speech auditory brainstem responses using a spectral feature-based ANN method

机译:使用基于频谱特征的ANN方法准确检测语音听觉脑干反应

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The speech auditory brainstem response (sABR) is a promising tool that can be used for objectively assessing auditory function. The main problem in obtaining the sABR is the high background noise, especially noise associated with general brain activity. In practice, a very long recording is needed to detect the sABR. We therefore propose a new detection method of the sABR based on spectral feature extraction that will reduce the detection time without reducing the accuracy. This method involves a constructed feature-frequency vector fed to an artificial neural network. The performance of the proposed method is compared to four other methods reported in the literature: optimal linear filtering, online estimator, Mutual Information, and artificial neural network based on discrete wavelet transforms and approximate entropy. All the methods were evaluated with several datasets of recorded and simulated sABRs ranging from extremely noisy to relatively clean. The proposed method performed very well in terms of sensitivity, specificity, and overall accuracy in detecting the sABR, compared with the other methods The reduction in the required recording time promises to facilitate the application of this measurement technique in clinical settings. (C) 2018 Elsevier Ltd. All rights reserved.
机译:语音听觉脑干反应(sABR)是一种很有前途的工具,可用于客观评估听觉功能。获得sABR的主要问题是高背景噪音,尤其是与一般大脑活动相关的噪音。在实践中,需要很长的记录才能检测到sABR。因此,我们提出了一种基于光谱特征提取的sABR检测新方法,该方法将减少检测时间而不降低准确度。该方法涉及将构造的特征频率向量馈送到人工神经网络。将该方法的性能与文献中报道的其他四种方法进行了比较:最优线性滤波,在线估计器,互信息以及基于离散小波变换和近似熵的人工神经网络。所有方法均通过从嘈杂到相对干净的多种记录和模拟sABR数据集进行评估。与其他方法相比,该方法在检测sABR的敏感性,特异性和总体准确性方面表现良好。所需记录时间的减少有望促进该测量技术在临床中的应用。 (C)2018 Elsevier Ltd.保留所有权利。

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