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| Main Authors: | , |
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| Format: | Preprint |
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2024
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| Online Access: | https://arxiv.org/abs/2406.02028 |
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| _version_ | 1866908343343251456 |
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| author | Lee, Kenneth Menglin Li, Fan |
| author_facet | Lee, Kenneth Menglin Li, Fan |
| contents | The parallel cluster randomized trial with baseline (PB-CRT) is a common variant of the standard parallel cluster randomized trial (P-CRT). We define two natural estimands in the context of PB-CRTs with informative cluster sizes, the participant-average treatment effect (pATE) and cluster-average treatment effect (cATE), to address participant and cluster-level hypotheses. In this work, we theoretically derive the convergence of the unweighted and inverse cluster-period size weighted (i.) independence estimating equation, (ii.) fixed-effects model, (iii.) exchangeable mixed-effects model, and (iv.) nested-exchangeable mixed-effects model treatment effect estimators in a PB-CRT with continuous outcomes. Overall, we theoretically show that the unweighted and weighted independence estimating equation and fixed-effects model yield consistent estimators for the pATE and cATE estimands. Although mixed-effects models yield inconsistent estimators to these two natural estimands under informative cluster sizes, we empirically demonstrate that the exchangeable mixed-effects model is surprisingly robust to bias. This is in sharp contrast to the corresponding analyses in P-CRTs and the nested-exchangeable mixed-effects model in PB-CRTs, and may carry implications for practice. We report a simulation study and conclude with a re-analysis of a PB-CRT examining the effects of community youth teams on improving mental health among adolescent girls in rural eastern India. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2406_02028 |
| institution | arXiv |
| publishDate | 2024 |
| record_format | arxiv |
| spellingShingle | How should parallel cluster randomized trials with a baseline period be analyzed? A survey of estimands and common estimators Lee, Kenneth Menglin Li, Fan Methodology The parallel cluster randomized trial with baseline (PB-CRT) is a common variant of the standard parallel cluster randomized trial (P-CRT). We define two natural estimands in the context of PB-CRTs with informative cluster sizes, the participant-average treatment effect (pATE) and cluster-average treatment effect (cATE), to address participant and cluster-level hypotheses. In this work, we theoretically derive the convergence of the unweighted and inverse cluster-period size weighted (i.) independence estimating equation, (ii.) fixed-effects model, (iii.) exchangeable mixed-effects model, and (iv.) nested-exchangeable mixed-effects model treatment effect estimators in a PB-CRT with continuous outcomes. Overall, we theoretically show that the unweighted and weighted independence estimating equation and fixed-effects model yield consistent estimators for the pATE and cATE estimands. Although mixed-effects models yield inconsistent estimators to these two natural estimands under informative cluster sizes, we empirically demonstrate that the exchangeable mixed-effects model is surprisingly robust to bias. This is in sharp contrast to the corresponding analyses in P-CRTs and the nested-exchangeable mixed-effects model in PB-CRTs, and may carry implications for practice. We report a simulation study and conclude with a re-analysis of a PB-CRT examining the effects of community youth teams on improving mental health among adolescent girls in rural eastern India. |
| title | How should parallel cluster randomized trials with a baseline period be analyzed? A survey of estimands and common estimators |
| topic | Methodology |
| url | https://arxiv.org/abs/2406.02028 |