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A method for selecting an efficient diagnostic protocol for classification of perceptive and cognitive impairments in neurological patients

机译:一种用于选择有效诊断方案以对神经病患者的知觉和认知障碍进行分类的方法

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An important and unresolved problem in the assessment of perceptual and cognitive deficits in neurological patients is how to choose from the many existing behavioral tests, a subset that is sufficient for an appropriate diagnosis. This problem has to be dealt with in clinical trials, as well as in rehabilitation settings and often even at bedside in acute care hospitals. The need for efficient, cost effective and accurate diagnostic-evaluations, in the context of clinician time constraints and concerns for patients' fatigue in long testing sessions, make it imperative to select a set of tests that will provide the best classification of the patient's deficits. However, the small sample size of the patient population complicates the selection methodology and the potential accuracy of the classifier. We propose a method that allows for ordering tests based on having progressive increases in classification using cross-validation to assess the classification power of the chosen test set. This method applies forward linear regression to find an ordering of the tests with leave-one-out cross-validation to quantify, without biasing to the training set, the classification power of the chosen tests.
机译:在评估神经系统患者的知觉和认知缺陷时,一个重要且尚未解决的问题是如何从许多现有的行为测试中进行选择,这些行为测试足以进行适当的诊断。这个问题必须在临床试验中,以及在康复环境中甚至在急诊医院的床头都必须解决。在临床医生的时间限制和长期测试过程中对患者疲劳的担忧中,需要有效,具有成本效益和准确的诊断评估,因此必须选择一套能够对患者缺陷进行最佳分类的测试。但是,患者人群的样本量较小,会使选择方法和分类器的潜在准确性复杂化。我们提出了一种方法,该方法可以基于使用交叉验证来评估所选测试集的分类能力而使分类逐步增加,从而对测试进行排序。此方法应用正向线性回归来查找具有留一法交叉验证的测试顺序,从而在不偏倚训练集的情况下对所选测试的分类能力进行量化。

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