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首页> 外文期刊>Advances in artificial neural systems >The Classification of Valid and Invalid Beats of Three-Dimensional Nystagmus Eye Movement Signals Using Machine Learning Methods
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The Classification of Valid and Invalid Beats of Three-Dimensional Nystagmus Eye Movement Signals Using Machine Learning Methods

机译:利用机器学习方法对三维眼球震颤眼动信号的有效和无效搏动进行分类

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摘要

Nystagmus recordings frequently include eye blinks, noise, or other corrupted segments that, with the exception of noise, cannot be dampened by filtering. We measured the spontaneous nystagmus of 107 otoneurological patients to form a training set for machine learning-based classifiers to assess and separate valid nystagmus beats from artefacts. Video-oculography was used to record three-dimensional nystagmus signals. Firstly, a procedure was implemented to accept or reject nystagmus beats according to the limits for nystagmus variables. Secondly, an expert perused all nystagmus beats manually. Thirdly, both the machine and the manual results were united to form the third variation of the training set for the machine learning-based classification. This improved accuracy results in classification; high accuracy values of up to 89% were obtained.
机译:眼球震颤录音经常包括眨眼,杂音或其他损坏的片段,除了杂音,这些杂物无法通过过滤来抑制。我们测量了107名耳科患者的自发性眼球震颤,形成了一套基于机器学习的分类器训练集,以评估并从假象中分离出有效的眼球震颤。视频眼动仪用于记录三维眼球震颤信号。首先,根据眼球震颤变量的限制,实施了接受或拒绝眼球震颤搏动的程序。其次,专家人工细读了所有眼球震颤。第三,将机器和人工结果结合起来,形成了基于机器学习的分类训练集的第三种形式。提高的准确性导致分类。获得高达89%的高精度值。

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  • 来源
    《Advances in artificial neural systems》 |2013年第2013期|14.1-14.11|共11页
  • 作者单位

    Computer Science, School of Information Sciences, University of Tampere, 33014 Tampere, Finland;

    Department of Otorhinolaryngology & Head and Neck Surgery, University of Helsinki and Helsinki University Central Hospital, HUS, 00029 Helsinki, Finland;

    Computer Science, School of Information Sciences, University of Tampere, 33014 Tampere, Finland;

    Department of Otorhinolaryngology & Head and Neck Surgery, University of Helsinki and Helsinki University Central Hospital, HUS, 00029 Helsinki, Finland;

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