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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Objective detection of the central auditory processing disorder:A new machine learning approach
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Objective detection of the central auditory processing disorder:A new machine learning approach

机译:中央听觉加工障碍的客观检测:一种新的机器学习方法

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The objective detection of binaural interaction is of diagnostic interest for the evaluation of the central auditory processing disorder (CAPD). The β-wave of the binaural interaction component in auditory brainstem responses has been suggested as an objective measure of binaural interaction and has been shown to be of diagnostic value in the CAPD diagnosis. However, a reliable and automated detection of the β-wave capable of clinical use still remains a challenge. We propose a new machine learning approach to the detection of the CAPD that is based on adapted tight frame decompositions which are tailored for support vector machines with radial kernels. Using shift-invariant scale and morphological features of the binaurally evoked brainstem potentials, our approach provides at least comparable results to the β-wave detection in view of the discrimination of subjects being at risk for CAPD and subjects being not at risk for CAPD. Furthermore, as no information from the monaurally evoked potentials is necessary, the measurement cost is reduced by two-thirds compared to the computation of the binaural interaction component. We conclude that a machine learning approach in the form of a hybrid tight frame-support vector classification is effective in the objective detection of the CAPD.
机译:对双耳相互作用的客观检测对于评估中枢听觉加工障碍(CAPD)具有诊断意义。已提出听觉脑干反应中双耳相互作用成分的β波是双耳相互作用的客观指标,并已显示出对CAPD诊断的诊断价值。然而,可靠和自动检测能够用于临床的β波仍然是一个挑战。我们提出了一种新的机器学习方法来检测CAPD,该方法基于为具有径向核的支持向量机量身定制的自适应紧框架分解。考虑到对有患CAPD危险的受试者和无患CAPD危险的受试者的辨别力,我们使用了双耳诱发的脑干电位的位移不变量表和形态特征,我们的方法至少提供了与β波检测相当的结果。此外,由于不需要来自单眼诱发电位的信息,因此与双耳相互作用分量的计算相比,测量成本降低了三分之二。我们得出结论,以混合紧框架支持向量分类的形式进行的机器学习方法在CAPD的客观检测中有效。

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