A Matching estimator based on a bilevel optimization problem
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2015Metadata
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Díaz Maureira, Juan
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A Matching estimator based on a bilevel optimization problem
Abstract
This paper proposes a novel matching estimator where neighbors
used and weights are endogenously determined by optimizing a covariate
balancing criterion. The estimator is based on finding, for each unit that
needs to be matched, sets of observations such that a convex combination
of them has the same covariate values as the unit needing matching or with
minimized distance between them. We implement the proposed estimator
with data from the National Supported Work Demonstration, finding outstanding
performance in terms of covariate balance. Monte Carlo evidence
shows that our estimator performs well in designs previously used in the
literature.
General note
Artículo de publicación ISI
Patrocinador
Fondecyt 1095181
Instituto Sistemas Complejos de Ingenieria
Iniciativa NS100041
Identifier
URI: https://repositorio.uchile.cl/handle/2250/135542
DOI: DOI: 10.1162/REST_a_00504
ISSN: 0034-6535
Quote Item
The Review of Economics and Statistics, October 2015, 97(4): 803–812
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