Literature DB >> 24659836

Large sample randomization inference of causal effects in the presence of interference.

Lan Liu1, Michael G Hudgens1.   

Abstract

Recently, increasing attention has focused on making causal inference when interference is possible. In the presence of interference, treatment may have several types of effects. In this paper, we consider inference about such effects when the population consists of groups of individuals where interference is possible within groups but not between groups. A two stage randomization design is assumed where in the first stage groups are randomized to different treatment allocation strategies and in the second stage individuals are randomized to treatment or control conditional on the strategy assigned to their group in the first stage. For this design, the asymptotic distributions of estimators of the causal effects are derived when either the number of individuals per group or the number of groups grows large. Under certain homogeneity assumptions, the asymptotic distributions provide justification for Wald-type confidence intervals (CIs) and tests. Empirical results demonstrate the Wald CIs have good coverage in finite samples and are narrower than CIs based on either the Chebyshev or Hoeffding inequalities provided the number of groups is not too small. The methods are illustrated by two examples which consider the effects of cholera vaccination and an intervention to encourage voting.

Entities:  

Keywords:  Normal mixture; causal inference; confidence interval; interference; randomization

Year:  2014        PMID: 24659836      PMCID: PMC3960089          DOI: 10.1080/01621459.2013.844698

Source DB:  PubMed          Journal:  J Am Stat Assoc        ISSN: 0162-1459            Impact factor:   5.033


  12 in total

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2.  A mapping between interactions and interference: implications for vaccine trials.

Authors:  Tyler J VanderWeele; Jan P Vandenbroucke; Eric J Tchetgen Tchetgen; James M Robins
Journal:  Epidemiology       Date:  2012-03       Impact factor: 4.822

3.  Effect partitioning under interference in two-stage randomized vaccine trials.

Authors:  Tyler J Vanderweele; Eric J Tchetgen Tchetgen
Journal:  Stat Probab Lett       Date:  2011-07-01       Impact factor: 0.870

4.  Herd immunity conferred by killed oral cholera vaccines in Bangladesh: a reanalysis.

Authors:  Mohammad Ali; Michael Emch; Lorenz von Seidlein; Mohammad Yunus; David A Sack; Malla Rao; Jan Holmgren; John D Clemens
Journal:  Lancet       Date:  2005 Jul 2-8       Impact factor: 79.321

5.  Pseudo cluster randomization: a treatment allocation method to minimize contamination and selection bias.

Authors:  George F Borm; René J F Melis; Steven Teerenstra; Petronella G Peer
Journal:  Stat Med       Date:  2005-12-15       Impact factor: 2.373

6.  A cluster-randomized effectiveness trial of Vi typhoid vaccine in India.

Authors:  Dipika Sur; R Leon Ochiai; Sujit K Bhattacharya; Nirmal K Ganguly; Mohammad Ali; Byomkesh Manna; Shanta Dutta; Allan Donner; Suman Kanungo; Jin Kyung Park; Mahesh K Puri; Deok Ryun Kim; Dharitri Dutta; Barnali Bhaduri; Camilo J Acosta; John D Clemens
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7.  Indirect effect of 7-valent pneumococcal conjugate vaccine on pneumococcal colonization among unvaccinated household members.

Authors:  Eugene V Millar; James P Watt; Melinda A Bronsdon; Jean Dallas; Raymond Reid; Mathuram Santosham; Katherine L O'Brien
Journal:  Clin Infect Dis       Date:  2008-10-15       Impact factor: 9.079

8.  Optimal vaccine trial design when estimating vaccine efficacy for susceptibility and infectiousness from multiple populations.

Authors:  I M Longini; K Sagatelian; W N Rida; M E Halloran
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9.  Inference with interference between units in an fMRI experiment of motor inhibition.

Authors:  Xi Luo; Dylan S Small; Chiang-Shan R Li; Paul R Rosenbaum
Journal:  J Am Stat Assoc       Date:  2012       Impact factor: 5.033

10.  Causal inference in infectious diseases.

Authors:  M E Halloran; C J Struchiner
Journal:  Epidemiology       Date:  1995-03       Impact factor: 4.822

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  19 in total

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Journal:  Stat (Int Stat Inst)       Date:  2019-02-11

2.  Exact Confidence Intervals in the Presence of Interference.

Authors:  Joseph Rigdon; Michael G Hudgens
Journal:  Stat Probab Lett       Date:  2015-10-01       Impact factor: 0.870

3.  Causal inference when counterfactuals depend on the proportion of all subjects exposed.

Authors:  Caleb H Miles; Maya Petersen; Mark J van der Laan
Journal:  Biometrics       Date:  2019-04-03       Impact factor: 2.571

4.  Doubly Robust Estimation in Observational Studies with Partial Interference.

Authors:  Lan Liu; Michael G Hudgens; Bradley Saul; John D Clemens; Mohammad Ali; Michael E Emch
Journal:  Stat (Int Stat Inst)       Date:  2019-01-10

5.  On inverse probability-weighted estimators in the presence of interference.

Authors:  L Liu; M G Hudgens; S Becker-Dreps
Journal:  Biometrika       Date:  2016-12-08       Impact factor: 2.445

6.  Interference and Sensitivity Analysis.

Authors:  Tyler J VanderWeele; Eric J Tchetgen Tchetgen; M Elizabeth Halloran
Journal:  Stat Sci       Date:  2014-11       Impact factor: 2.901

7.  Causal inference with interfering units for cluster and population level treatment allocation programs.

Authors:  Georgia Papadogeorgou; Fabrizia Mealli; Corwin M Zigler
Journal:  Biometrics       Date:  2019-04-13       Impact factor: 2.571

8.  Estimating population effects of vaccination using large, routinely collected data.

Authors:  M Elizabeth Halloran; Michael G Hudgens
Journal:  Stat Med       Date:  2017-07-19       Impact factor: 2.373

9.  Accounting for interactions and complex inter-subject dependency in estimating treatment effect in cluster-randomized trials with missing outcomes.

Authors:  Melanie Prague; Rui Wang; Alisa Stephens; Eric Tchetgen Tchetgen; Victor DeGruttola
Journal:  Biometrics       Date:  2016-04-08       Impact factor: 2.571

Review 10.  Social Network Assessments and Interventions for Health Behavior Change: A Critical Review.

Authors:  Carl A Latkin; Amy R Knowlton
Journal:  Behav Med       Date:  2015       Impact factor: 3.104

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