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Causal inference and observational data

delete2023-10-11
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OA
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I
Iván Olier *
Y
Yiqiang Zhan
X
Xiaoyu Liang
V
Victor Volovici
DOI:10.1186/s12874-023-02058-5delete
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Abstract

Abstract

En 中文
Observational studies using causal inference frameworks can provide a feasible alternative to randomized controlled trials. Advances in statistics, machine learning, and access to big data facilitate unraveling complex causal relationships from observational data across healthcare, social sciences, and other fields. However, challenges like evaluating models and bias amplification remain.
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Journal

BMC Medical Research Methodology cover
BMC Medical Research Methodology
IF:
3.4
Papers:
3.9K
Citations:
2.8W

Organization

L
Liverpool John Moores University
Scholars:
5.7K
Papers: 6.5K
Citations: 1.1W
K
Karolinska Institutet
Scholars:
5.8W
Papers: 4.8W
Citations: 7.1W
M
michigan state university
Scholars:
3.6W
Papers: 3.2W
Citations: 44
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