Software Application Profile: Bayesian estimation of inverse variance weighted and MR-Egger models for two-sample Mendelian randomization studies-mrbayes
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作者:
Uche-Ikonne, Okezie
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机构:
Univ Lancaster, Dept Math & Stat, Lancaster, EnglandUniv Lancaster, Dept Math & Stat, Lancaster, England
Uche-Ikonne, Okezie
[1
]
Dondelinger, Frank
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机构:
Univ Lancaster, Fac Hlth & Med, Lancaster, EnglandUniv Lancaster, Dept Math & Stat, Lancaster, England
Dondelinger, Frank
[2
]
Palmer, Tom
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机构:
Univ Lancaster, Dept Math & Stat, Lancaster, England
Univ Bristol, MRC, Integrat Epidemiol Unit, Bristol Med Sch, Bristol, Avon, England
Univ Bristol, Populat Hlth Sci, Bristol Med Sch, Bristol, Avon, EnglandUniv Lancaster, Dept Math & Stat, Lancaster, England
Palmer, Tom
[1
,3
,4
]
机构:
[1] Univ Lancaster, Dept Math & Stat, Lancaster, England
[2] Univ Lancaster, Fac Hlth & Med, Lancaster, England
[3] Univ Bristol, MRC, Integrat Epidemiol Unit, Bristol Med Sch, Bristol, Avon, England
[4] Univ Bristol, Populat Hlth Sci, Bristol Med Sch, Bristol, Avon, England
Motivation: We present our package, mrbayes, for the open source software environment R. The package implements Bayesian estimation for inverse variance weighted (IVW) and MR-Egger models, including the radial MR-Egger model, for summary-level data in Mendelian randomization (MR) analyses. Implementation: We have implemented a choice of prior distributions for the model parameters, namely; weakly informative, non-informative, a joint prior for the MR-Egger model slope and intercept, and an informative prior (pseudo-horseshoe prior), or the user can specify their own prior distribution. General features: Users have the option of fitting the models using either JAGS or Stan software packages with similar prior distributions; the option for the user-defined prior distribution is only in our JAGS functions. We show how to use the package through an applied example investigating the causal effect of body mass index (BMI) on acute ischaemic stroke.
机构:
Univ Penn, Dept Stat, Philadelphia, PA 19104 USAUniv Penn, Dept Stat, Philadelphia, PA 19104 USA
Ye, Ting
Shao, Jun
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机构:
East China Normal Univ, Sch Stat, Shanghai, Peoples R China
Univ Wisconsin, Dept Stat, Madison, WI USAUniv Penn, Dept Stat, Philadelphia, PA 19104 USA
Shao, Jun
Kang, Hyunseung
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机构:
Univ Wisconsin, Dept Stat, Madison, WI USAUniv Penn, Dept Stat, Philadelphia, PA 19104 USA
Kang, Hyunseung
ANNALS OF STATISTICS,
2021,
49
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: 2079
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