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Feature Selection Optimisation in an Automated Diagnostic Cancellation Task

机译:自动诊断取消任务中的特征选择优化

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This paper describes an investigation into feature selection and classification in the automation of a standard target cancellation task for the diagnosis of visuo-spatial neglect. Alongside a conventional assessment based on the number of targets cancelled, a series of time-based dynamic features have been algorithmically defined which can be extracted by capturing the test subject's response on a graphics tablet connected to a computer. We identify the diagnostic capabilities of the individual features and show that dynamic data contains important indicators for neglect detection. Furthermore, employing standard pattern recognition techniques, we establish the optimum feature vector size and classifier for a multi-feature analysis of a test attempt and show that an improvement in diagnostic error rate is achievable over any single individual feature.
机译:本文介绍了对用于视觉空间疏忽诊断的标准目标取消任务的自动化中的特征选择和分类的研究。除了基于已取消目标数量的常规评估之外,还通过算法定义了一系列基于时间的动态特征,可以通过在连接到计算机的图形输入板上捕获测试对象的响应来提取这些特征。我们确定了各个功能部件的诊断能力,并表明动态数据包含了忽略检测的重要指标。此外,采用标准的模式识别技术,我们为测试尝试的多特征分析建立了最佳的特征向量大小和分类器,并表明在任何单个单个特征上都可以实现诊断错误率的提高。

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