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A new density-ratio based approach for patient-specific biomedical monitoring

机译:一种基于密度比的新方法,用于患者特定的生物医学监测

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In order to denote the abnormalities of the patients, we propose a novel approach to detect anomaly in biomedical monitoring using density ratio values as the Patient Status Index (PSI). The key idea of the proposed method is to define the ratio of training and testing data densities, where training dataset only consist of normal data and testing dataset consist of both normal and abnormal data, and identify irregular samples for testing patients' dataset. Furthermore, we define four inequalities to denote the interval values of density ratio and give the corresponding status for patients. In addition, the applied Kullback-Leibler based algorithm for calculating density ratio values without involving density estimation is equipped with a cross validation (CV) model selection procedure, allowing us to objectively optimize values of tuning parameters. We select training and testing data from Physionet database to do our pilot experiment. The experimental results for 11901 beats show that the density-ratio based approach work very well in terms of specificity and sensitivity.
机译:为了表示患者的异常情况,我们提出了一种新的方法来使用密度比值作为患者状态指数(PSI)在生物医学监测中检测异常。该方法的关键思想是定义训练和测试数据密度的比率,其中训练数据集仅由正常数据组成,而测试数据集由正常和异常数据组成,并识别不规则样本以测试患者的数据集。此外,我们定义了四个不等式来表示密度比的区间值,并给出患者的相应状态。另外,所应用的基于Kullback-Leibler的算法在不涉及密度估计的情况下计算密度比值配备了交叉验证(CV)模型选择程序,使我们能够客观地优化调整参数的值。我们从Physionet数据库中选择训练和测试数据来进行我们的实验。 11901次节拍的实验结果表明,基于密度比的方法在特异性和敏感性方面效果很好。

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