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Data Mining to Assess Variations in Oral Anticoagulant Treatment

机译:数据挖掘评估口服抗凝治疗的变异

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Variations in International Normalized Ratio's (INR) are closely related to bleeding and thrombosis incidents in patients on oral anticoagulation treatment. This study investigates predictive factors that affect INR values. Data sampled with relatively high frequency allows for detection of local INR variations, and hence also allows detection and evaluation of predictive factors where time is taken into consideration. Univariate linear regression was applied and different models were reduced into a final predictive model. F-tests were utilized to test whether or not a model reduction would benefit INR predictions, in terms of decreasing observed variance. In addition to an INR submodel, the final model includes individual interaction from the last three days change in mean warfarin intake and three days change in mean vitamin K intake. Prediction residual error was mainly reduced by the INR submodel, while the warfarin model and the vitamin K submodel did not benefit predictions to same extend compared to the INR submodel. However, more studies on the temporal aspects of the effect of warfarin seem to be relevant.
机译:国际规范化比例(INR)的变化与口服抗凝治疗患者的出血和血栓形成事故密切相关。本研究调查了影响INR值的预测因素。采用相对高频采样的数据允许检测局部INR变化,因此还允许检测和评估考虑时间的预测因子。将非变量线性回归应用,并且将不同的模型减少到最终预测模型中。在减少观察方差方面,使用F-Tests测试模型减少是否会使INR预测中受益。除INR子模型外,最终模型还包括从过去三天的单个相互作用,平均华法林摄入的变化和平均维生素K摄入量的三天变化。 INR子模型主要减少预测残余误差,而Warfarin模型和维生素K子模型与INR子模型相比没有受益于相同延伸的预测。然而,更多关于华法林效果的时间方面的研究似乎是相关的。

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