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脑电图棘波自动检测。

Automatic EEG spike detection.

作者信息

Harner Richard

机构信息

BrainVue Systems, Philadelphia, Pennsylvania, PA 19129, USA.

出版信息

Clin EEG Neurosci. 2009 Oct;40(4):262-70. doi: 10.1177/155005940904000408.

Abstract

Since the 1970s advances in science and technology during each succeeding decade have renewed the expectation of efficient, reliable automatic epileptiform spike detection (AESD). But even when reinforced with better, faster tools, clinically reliable unsupervised spike detection remains beyond our reach. Expert-selected spike parameters were the first and still most widely used for AESD. Thresholds for amplitude, duration, sharpness, rise-time, fall-time, after-coming slow waves, background frequency, and more have been used. It is still unclear which of these wave parameters are essential, beyond peak-peak amplitude and duration. Wavelet parameters are very appropriate to AESD but need to be combined with other parameters to achieve desired levels of spike detection efficiency. Artificial Neural Network (ANN) and expert-system methods may have reached peak efficiency. Support Vector Machine (SVM) technology focuses on outliers rather than centroids of spike and nonspike data clusters and should improve AESD efficiency. An exemplary spike/nonspike database is suggested as a tool for assessing parameters and methods for AESD and is available in CSV or Matlab formats from the author at brainvue@gmail.com. Exploratory Data Analysis (EDA) is presented as a graphic method for finding better spike parameters and for the step-wise evaluation of the spike detection process.

摘要

自20世纪70年代以来,每一个后续十年中科学技术的进步都重新燃起了人们对高效、可靠的自动癫痫样棘波检测(AESD)的期望。但即便配备了更好、更快的工具,临床上可靠的无监督棘波检测仍难以实现。专家选定的棘波参数是最早且至今仍最广泛用于AESD的参数。已使用了幅度、持续时间、锐度、上升时间、下降时间、后续慢波、背景频率等的阈值。除了峰峰值幅度和持续时间之外,这些波形参数中哪些是必不可少的仍不清楚。小波参数非常适用于AESD,但需要与其他参数相结合才能达到所需的棘波检测效率水平。人工神经网络(ANN)和专家系统方法可能已达到了最高效率。支持向量机(SVM)技术关注的是异常值而非棘波和非棘波数据簇的质心,应该能提高AESD效率。建议使用一个示例性的棘波/非棘波数据库作为评估AESD参数和方法的工具,可通过发邮件至brainvue@gmail.com向作者以CSV或Matlab格式获取。探索性数据分析(EDA)作为一种图形方法被提出,用于寻找更好的棘波参数以及对棘波检测过程进行逐步评估。

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