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Comparison of Two Meta-Analysis Methods: Inverse-Variance-Weighted Average and Weighted Sum of Z-Scores
Genomics & Informatics ; : 173-180, 2016.
Artículo en Inglés | WPRIM | ID: wpr-172203
ABSTRACT
The meta-analysis has become a widely used tool for many applications in bioinformatics, including genome-wide association studies. A commonly used approach for meta-analysis is the fixed effects model approach, for which there are two popular

methods:

the inverse variance-weighted average method and weighted sum of z-scores method. Although previous studies have shown that the two methods perform similarly, their characteristics and their relationship have not been thoroughly investigated. In this paper, we investigate the optimal characteristics of the two methods and show the connection between the two methods. We demonstrate that the each method is optimized for a unique goal, which gives us insight into the optimal weights for the weighted sum of z-scores method. We examine the connection between the two methods both analytically and empirically and show that their resulting statistics become equivalent under certain assumptions. Finally, we apply both methods to the Wellcome Trust Case Control Consortium data and demonstrate that the two methods can give distinct results in certain study designs.
Asunto(s)

Texto completo: Disponible Índice: WPRIM (Pacífico Occidental) Asunto principal: Pesos y Medidas / Estudios de Casos y Controles / Biología Computacional / Estudio de Asociación del Genoma Completo / Métodos Tipo de estudio: Estudio observacional / Estudio pronóstico / Factores de riesgo / Revisiones Sistemáticas Evaluadas Idioma: Inglés Revista: Genomics & Informatics Año: 2016 Tipo del documento: Artículo

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Texto completo: Disponible Índice: WPRIM (Pacífico Occidental) Asunto principal: Pesos y Medidas / Estudios de Casos y Controles / Biología Computacional / Estudio de Asociación del Genoma Completo / Métodos Tipo de estudio: Estudio observacional / Estudio pronóstico / Factores de riesgo / Revisiones Sistemáticas Evaluadas Idioma: Inglés Revista: Genomics & Informatics Año: 2016 Tipo del documento: Artículo