Literature DB >> 22611591

Targeted minimum loss based estimation of causal effects of multiple time point interventions.

Mark J van der Laan1, Susan Gruber.   

Abstract

We consider estimation of the effect of a multiple time point intervention on an outcome of interest, where the intervention nodes are subject to time-dependent confounding by intermediate covariates. In previous work van der Laan (2010) and Stitelman and van der Laan (2011a) developed and implemented a closed form targeted maximum likelihood estimator (TMLE) relying on the log-likelihood loss function, and demonstrated important gains relative to inverse probability of treatment weighted estimators and estimating equation based estimators. This TMLE relies on an initial estimator of the entire probability distribution of the longitudinal data structure. To enhance the finite sample performance of the TMLE of the target parameter it is of interest to select the smallest possible relevant part of the data generating distribution, which is estimated and updated by TMLE. Inspired by this goal, we develop a new closed form TMLE of an intervention specific mean outcome based on general longitudinal data structures. The target parameter is represented as an iterative sequence of conditional expectations of the outcome of interest. This collection of conditional means represents the relevant part, which is estimated and updated using the general TMLE algorithm. We also develop this new TMLE for other causal parameters, such as parameters defined by working marginal structural models. The theoretical properties of the TMLE are also practically demonstrated with a small scale simulation study.The proposed TMLE is building upon a previously proposed estimator Bang and Robins (2005) by integrating some of its key and innovative ideas into the TMLE framework.

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Year:  2012        PMID: 22611591     DOI: 10.1515/1557-4679.1370

Source DB:  PubMed          Journal:  Int J Biostat        ISSN: 1557-4679            Impact factor:   0.968


  54 in total

1.  Double robust and efficient estimation of a prognostic model for events in the presence of dependent censoring.

Authors:  Mireille E Schnitzer; Judith J Lok; Ronald J Bosch
Journal:  Biostatistics       Date:  2015-07-29       Impact factor: 5.899

2.  Smoking Is Associated with Higher Disease Activity in Rheumatoid Arthritis: A Longitudinal Study Controlling for Time-varying Covariates.

Authors:  Milena A Gianfrancesco; Laura Trupin; Stephen Shiboski; Mark van der Laan; Jonathan Graf; John Imboden; Jinoos Yazdany; Gabriela Schmajuk
Journal:  J Rheumatol       Date:  2018-12-01       Impact factor: 4.666

Review 3.  The Healthy Worker Survivor Effect: Target Parameters and Target Populations.

Authors:  Daniel M Brown; Sally Picciotto; Sadie Costello; Andreas M Neophytou; Monika A Izano; Jacqueline M Ferguson; Ellen A Eisen
Journal:  Curr Environ Health Rep       Date:  2017-09

4.  Semiparametric Estimation of the Impacts of Longitudinal Interventions on Adolescent Obesity using Targeted Maximum-Likelihood: Accessible Estimation with the ltmle Package.

Authors:  Anna L Decker; Alan Hubbard; Catherine M Crespi; Edmund Y W Seto; May C Wang
Journal:  J Causal Inference       Date:  2014-03

5.  Commentary: Applying a causal road map in settings with time-dependent confounding.

Authors:  Maya L Petersen
Journal:  Epidemiology       Date:  2014-11       Impact factor: 4.822

6.  Targeted Maximum Likelihood Estimation for Dynamic and Static Longitudinal Marginal Structural Working Models.

Authors:  Maya Petersen; Joshua Schwab; Susan Gruber; Nello Blaser; Michael Schomaker; Mark van der Laan
Journal:  J Causal Inference       Date:  2014-06-18

7.  Effect Estimation in Point-Exposure Studies with Binary Outcomes and High-Dimensional Covariate Data - A Comparison of Targeted Maximum Likelihood Estimation and Inverse Probability of Treatment Weighting.

Authors:  Menglan Pang; Tibor Schuster; Kristian B Filion; Mireille E Schnitzer; Maria Eberg; Robert W Platt
Journal:  Int J Biostat       Date:  2016-11-01       Impact factor: 0.968

8.  An educational intervention to improve knowledge about prevention against occupational asthma and allergies using targeted maximum likelihood estimation.

Authors:  Daloha Rodríguez-Molina; Swaantje Barth; Ronald Herrera; Constanze Rossmann; Katja Radon; Veronika Karnowski
Journal:  Int Arch Occup Environ Health       Date:  2019-01-14       Impact factor: 3.015

9.  Are all biases missing data problems?

Authors:  Chanelle J Howe; Lauren E Cain; Joseph W Hogan
Journal:  Curr Epidemiol Rep       Date:  2015-07-12

10.  Modeling the impact of hepatitis C viral clearance on end-stage liver disease in an HIV co-infected cohort with targeted maximum likelihood estimation.

Authors:  Mireille E Schnitzer; Erica E M Moodie; Mark J van der Laan; Robert W Platt; Marina B Klein
Journal:  Biometrics       Date:  2013-11-13       Impact factor: 2.571

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