Journal of Computational and Applied Mathematics2022,Vol.4048.DOI:10.1016/j.cam.2021.113414

Combining Statistical Matching and Propensity Score Adjustment for inference from non-probability surveys

Castro-Martin, Luis Rueda, Mara del Mar Ferri-Garcia, Ramon
Journal of Computational and Applied Mathematics2022,Vol.4048.DOI:10.1016/j.cam.2021.113414

Combining Statistical Matching and Propensity Score Adjustment for inference from non-probability surveys

Castro-Martin, Luis 1Rueda, Mara del Mar 1Ferri-Garcia, Ramon1
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作者信息

  • 1. Univ Granada
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Abstract

The convenience of online surveys has quickly increased their popularity for data collection. However, this method is often non-probabilistic as they usually rely on selfselection procedures and internet coverage. These problems produce biased samples. In order to mitigate this bias, some methods like Statistical Matching and Propensity Score Adjustment (PSA) have been proposed. Both of them use a probabilistic reference sample with some covariates in common with the convenience sample. Statistical Matching trains a machine learning model with the convenience sample which is then used to predict the target variable for the reference sample. These predicted values can be used to estimate population values. In PSA, both samples are used to train a model which estimates the propensity to participate in the convenience sample. Weights for the convenience sample are then calculated with those propensities. In this study, we propose methods to combine both techniques. The performance of each proposed method is tested by drawing nonprobability and probability samples from real datasets and using them to estimate population parameters. (C)& nbsp;2021 Elsevier B.V. All rights reserved.

Key words

Nonprobability surveys/Machine learning techniques/Propensity score adjustment/Survey sampling/CALIBRATION/ESTIMATOR

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出版年

2022
Journal of Computational and Applied Mathematics

Journal of Computational and Applied Mathematics

EISCI
ISSN:0377-0427
被引量2
参考文献量25
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