基于自动听觉脑干反应的新生儿客观听力筛查鲁棒算法

W. A. H. R. Weerathunge, D. Bandara, M. G. B. Amaratunga, A. C. De Silva
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引用次数: 3

摘要

目前,每1000名新生儿中有2至4人患有听力障碍。在对新生儿进行强制性听力筛查时,需要稳健的算法使该过程快速有效。在本文中,我们提出了一种利用听觉脑干反应(ABR)自动进行客观听力筛选的新算法。整合了有效的刺激传递机制、高效的信号处理算法和自动峰值检测算法,在保持准确性的同时减少了测试时间。同时,还考虑了临床环境中环境噪声水平的补偿,而不是隔音环境。啁啾刺激、经验模态分解和高曲率检测已通过MATLAB®模拟对ADInstruments®PowerLab收集的数据进行了严格验证。筛选中使用的算法将测试时间减少到黄金标准听力筛选程序的8%,即基于点击刺激的同步平均。此外,所得的ABR波形被去噪,使其相对容易诊断。与现有的金标准程序相比,论文中强调的研究结果为稳健和准确的新生儿听力筛查提供了一种优越的方法。
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Robust algorithm for objective hearing screening of newborns using Automated Auditory Brain-stem Response
At present, 2 to 4 out of every 1000 births are affected with hearing impairments. In enforcing mandatory hearing screening for neonates, robust algorithms are required to make the process fast and efficient. In this paper, we present a novel algorithm to automate objective hearing screening using auditory brainstem response (referred to as ABR). An effective stimulus delivery mechanism, an efficient signal processing algorithm and an automatic peak detection algorithm are consolidated to reduce test time while maintaining accuracy. Simultaneously, compensation for ambient noise levels in clinical environments as opposed to sound proof environments are also considered. The Chirp Stimulus, Empirical Mode Decomposition and High Curvature Detection have been rigorously verified by MATLAB® simulations for data collected by ADInstruments® PowerLab. The algorithms utilized in screening reduce testing time to 8% of the gold standard hearing screening procedure, i.e. Click Stimulus based synchronized averaging. Moreover, the resultant ABR waveforms acquired are de-noised making them comparatively convenient to diagnose. The findings highlighted in the paper provide a superior methodology for robust and accurate newborn hearing screening compared to existing gold standard procedure.
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