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Cost-saving tree-structured survival analysis for hip fracture of study of osteoporotic fractures data.

机译:节省成本的树状结构髋关节骨折生存分析研究骨质疏松性骨折数据。

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摘要

It is important to predict osteoporotic fracture risk accurately in order to select high-risk patients for treatment. Previous tree-structured survival analysis (TSSA) methods focused on optimization in statistical performance in construction of survival trees. However, they did not take into account the cost of the predictive variables. Because of the high cost of some predictors, the derived algorithm may have only limited application in practice. In this article, the authors consider the cost-effectiveness in TSSA and propose a cost-saving TSSA (denoted as CSTSSA) to construct the survival tree for identifying subjects at high risk of hip fracture based on the data from Study of Osteoporotic Fractures. The new rule is compared with the optimum classification based on log-rank test statistics using the noninferiority test by Lu and others. The comparison results suggest that, for identifying patients at high risk of hip fracture, the CSTSSA is a good alternative to the optimum classification.
机译:重要的是准确预测骨质疏松性骨折的风险,以便选择高危患者进行治疗。先前的树状结构生存分析(TSSA)方法致力于优化生存树构建中的统计性能。但是,他们没有考虑预测变量的成本。由于某些预测器的成本很高,因此在实践中导出的算法可能仅具有有限的应用。在本文中,作者考虑了TSSA的成本效益,并根据骨质疏松性骨折研究的数据,提出了一种节省成本的TSSA(表示为CSTSSA)来构建用于识别高风险髋部骨折受试者的生存树。使用Lu等人的非劣效性检验,将新规则与基于对数秩检验统计数据的最佳分类进行比较。比较结果表明,对于确定髋部骨折高风险患者,CSTSSA是最佳分类的良好选择。

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