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A Clinical Decision Support System to Help the Interpretation of Laboratory Results and to Elaborate a Clinical Diagnosis in Blood Coagulation Domain

机译:一个临床决策支持系统,可帮助解释实验室结果并详细阐述凝血领域的临床诊断

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Hemophilia is a rare hemorrhagic disorder caused by clotting factor deficiencies that leads to a less efficient coagulation system. Treatments of this pathology rely on a patient's subjective assessment which reflects a need for a laboratory assay able to predict the clinical patient phenotype. According to the literature, global assays such as thrombin generation (TG), are good predictors of bleeding episodes and therefore seem to be good candidates to fit this need. Nevertheless, the result of the TG assay, known as thrombogram, is difficult to interpret for nonexpert clinicians. In this paper, we present a machine learning-based clinical decision support system which goal is to help clinical decision making. In doing so, we have adopted several approaches in order to evaluate well-known machine learning algorithms, in terms of accuracy and robustness, on a thrombogram database generated using numerical simulations. Obtained results, 95.57% of accuracy using a cascade of a SVM and MLPs to classify all categories and 98.10% of accuracy for the binary case hemophilia A/B, prove that our proposal can efficiently diagnose hemophilia.
机译:血友病是由凝血因子缺乏症引起的罕见出血性疾病,导致凝血系统效率降低。这种病理学的治疗依赖于患者的主观评估,这反映了需要一种能够预测临床患者表型的实验室检测方法。根据文献,诸如凝血酶生成(TG)之类的整体检测是出血事件的良好预测指标,因此似乎是满足这一需求的良好候选者。然而,TG测定的结果被称为血栓图,对于非专业临床医生来说很难解释。在本文中,我们提出了一种基于机器学习的临床决策支持系统,其目的是帮助临床决策。在此过程中,我们采用了几种方法,以便在使用数值模拟生成的血栓图数据库上评估准确性和鲁棒性方面的著名机器学习算法。使用SVM和MLP级联对所有类别进行分类获得的准确率达到95.57%,二元病例血友病A / B的准确率达到98.10%,证明我们的建议可以有效诊断血友病。

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