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Clinical studies sometimes encounter truncation by death, rendering outcomes undefined. Statistical analysis based solely on observed survivors may give biased results because the characteristics of survivors differ between treatment…

统计方法学 · 统计学 2022-11-23 Yuhao Deng , Yingjun Chang , Xiao-Hua Zhou

The analysis of causal effects when the outcome of interest is possibly truncated by death has a long history in statistics and causal inference. The survivor average causal effect is commonly identified with more assumptions than those…

统计方法学 · 统计学 2020-03-24 Jaffer M. Zaidi , Eric J. Tchetgen Tchetgen , Tyler J. VanderWeele

Missing attributes are ubiquitous in causal inference, as they are in most applied statistical work. In this paper, we consider various sets of assumptions under which causal inference is possible despite missing attributes and discuss…

统计方法学 · 统计学 2020-05-25 Imke Mayer , Erik Sverdrup , Tobias Gauss , Jean-Denis Moyer , Stefan Wager , Julie Josse

In clinical trials, principal stratification analysis is commonly employed to address the issue of truncation by death, where a subject dies before the outcome can be measured. However, in practice, many survivor outcomes may remain…

统计方法学 · 统计学 2025-07-08 Wei Li , Yuan Liu , Shanshan Luo , Zhi Geng

Causal inference concerns not only the average effect of the treatment on the outcome but also the underlying mechanism through an intermediate variable of interest. Principal stratification characterizes such a mechanism by targeting…

统计方法学 · 统计学 2022-03-29 Zhichao Jiang , Shu Yang , Peng Ding

In the presence of heterogeneity between the randomized controlled trial (RCT) participants and the target population, evaluating the treatment effect solely based on the RCT often leads to biased quantification of the real-world treatment…

统计方法学 · 统计学 2022-10-05 Dasom Lee , Shu Yang , Xiaofei Wang

It is common that in multiarm randomized trials, the outcome of interest is "truncated by death," meaning that it is only observed or well defined conditioning on an intermediate outcome. In this case, in addition to pairwise contrasts, the…

统计方法学 · 统计学 2016-11-22 Linbo Wang , Thomas S. Richardson , Xiao-Hua Zhou

Patient-centered outcomes, such as quality of life and length of hospital stay, are the focus in a wide array of clinical studies. However, participants in randomized trials for elderly or critically and severely ill patient populations may…

统计方法学 · 统计学 2024-04-17 Dane Isenberg , Michael Harhay , Nandita Mitra , Fan Li

It is common in medical studies that the outcome of interest is truncated by death, meaning that a subject has died before the outcome could be measured. In this case, restricted analysis among survivors may be subject to selection bias.…

统计方法学 · 统计学 2018-04-25 Linbo Wang , Xiao-Hua Zhou , Thomas S. Richardson

In semicompeting risks problems, nonterminal time-to-event outcomes such as time to hospital readmission are subject to truncation by death. These settings are often modeled with illness-death models for the hazards of the terminal and…

统计方法学 · 统计学 2019-02-27 Leah Comment , Fabrizia Mealli , Sebastien Haneuse , Corwin Zigler

When longitudinal outcomes are evaluated in mortal populations, their non-existence after death complicates the analysis and its causal interpretation. Where popular methods often merge longitudinal outcome and survival into one scale or…

We investigate the bounding problem of causal effects in experimental studies in which the outcome is truncated by death, meaning that the subject dies before the outcome can be measured. Causal effects cannot be point identified without…

统计方法学 · 统计学 2024-04-29 Aixian Chen , Xia Cui , Guangren Yang

In some randomized clinical trials, patients may die before the measurements of their outcomes. Even though randomization generates comparable treatment and control groups, the remaining survivors often differ significantly in background…

应用统计 · 统计学 2018-03-07 Fan Yang , Peng Ding

The sufficient cause framework has been used for decades to improve our understanding of both basic and more complex causal concepts in epidemiology, such as mediation and interaction. Here, we make use of this framework to provide a…

统计方法学 · 统计学 2026-04-08 Bronner P. Gonçalves , Eiji Yamamoto , Etsuji Suzuki

Although randomized controlled trials have long been regarded as the ``gold standard'' for evaluating treatment effects, there is no natural prevention from post-treatment events. For example, non-compliance makes the actual treatment…

统计方法学 · 统计学 2025-04-25 Qinqing Liu , Xiang Peng , Tao Zhang , Yuhao Deng

Truncation by death, a prevalent challenge in critical care, renders traditional dynamic treatment regime (DTR) evaluation inapplicable due to ill-defined potential outcomes. We introduce a principal stratification-based method, focusing on…

机器学习 · 统计学 2025-10-10 Sihyung Park , Wenbin Lu , Shu Yang

In this paper, we introduce a doubly doubly robust estimator for the average and heterogeneous treatment effect for left-truncated-right-censored (LTRC) survival data. In causal inference for survival functions in LTRC survival data, two…

综合经济学 · 经济学 2024-09-04 Guanghui Pan

Cluster-randomized trials (CRTs) on fragile populations frequently encounter complex attrition problems where the reasons for missing outcomes can be heterogeneous, with participants who are known alive, known to have died, or with unknown…

统计方法学 · 统计学 2025-05-06 Guangyu Tong , Chenxi Li , Eric Velazquez , Michael O. Harhay , Fan Li

Intercurrent events, such as treatment switching, rescue medication, dropout, or truncation by death, frequently complicate intention-to-treat analyses in randomized clinical trials. Existing causal inference frameworks typically target…

统计方法学 · 统计学 2026-03-12 Georgi Baklicharov , Kelly Van Lancker , Stijn Vansteelandt

When estimating the treatment effect in an observational study, we use a semiparametric locally efficient dimension reduction approach to assess both the treatment assignment mechanism and the average responses in both treated and…

统计方法学 · 统计学 2020-10-26 Trinetri Ghosh , Yanyuan Ma , Xavier de Luna
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