首页> 外文期刊>Scandinavian journal of statistics >Nonparametric inference for functional-on-scalar linear models applied to knee kinematic hop data after injury of the anterior cruciate ligament
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Nonparametric inference for functional-on-scalar linear models applied to knee kinematic hop data after injury of the anterior cruciate ligament

机译:前交叉韧带损伤后应用于膝运动学跳跃数据的标量函数线性模型的非参数推断

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摘要

Motivated by the analysis of the dependence of knee movement patterns during functional tasks on subject-specific covariates, we introduce a distribution-free procedure for testing a functional-on-scalar linear model with fixed effects. The procedure does not only test the global hypothesis on the entire domain but also selects the intervals where statistically significant effects are detected. We prove that the proposed tests are provided with an asymptotic control of the intervalwise error rate, that is, the probability of falsely rejecting any interval of true null hypotheses. The procedure is applied to one-leg hop data from a study on anterior cruciate ligament injury. We compare knee kinematics of three groups of individuals (two injured groups with different treatments and one group of healthy controls), taking individual-specific covariates into account.
机译:通过分析功能任务期间膝盖运动模式对特定对象协变量的依赖性,我们引入了一种无分布程序,用于测试具有固定作用的标量函数线性模型。该过程不仅测试整个域的全局假设,而且选择检测到统计学上显着影响的时间间隔。我们证明所提出的检验具有区间错误率的渐近控制,即错误拒绝否定真零假设的任何间隔的概率。该程序应用于前交叉韧带损伤研究的单腿跳数据。我们比较了三组个体的膝关节运动学(两个受伤组采用不同的治疗方法,一组健康对照组),并考虑了个体特异性协变量。

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