Identifying treatment effects and counterfactual distributions using data combination with unobserved heterogeneity

Identifying treatment effects and counterfactual distributions using data combination with unobserved heterogeneity
Author: Pablo Lavado
Publisher:
Total Pages:
Release: 2015
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This paper considers identification of treatment effects when the outcome variables and covari-ates are not observed in the same data sets. Ecological inference models, where aggregate out-come information is combined with individual demographic information, are a common example of these situations. In this context, the counterfactual distributions and the treatment effects are not point identified. However, recent results provide bounds to partially identify causal effects. Unlike previous works, this paper adopts the selection on unobservables assumption, which means that randomization of treatment assignments is not achieved until time fixed unobserved heterogeneity is controlled for. Panel data models linear in the unobserved components are con-sidered to achieve identification. To assess the performance of these bounds, this paper provides a simulation exercise.


Identifying treatment effects and counterfactual distributions using data combination with unobserved heterogeneity
Language: es
Pages:
Authors: Pablo Lavado
Categories:
Type: BOOK - Published: 2015 - Publisher:

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This paper considers identification of treatment effects when the outcome variables and covari-ates are not observed in the same data sets. Ecological inference
Filtered and Unfiltered Treatment Effects with Targeting Instruments
Language: en
Pages: 60
Authors: Sokbae Lee
Categories: Econometric models
Type: BOOK - Published: 2020 - Publisher:

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Multivalued treatments are commonplace in applications. We explore the use of discrete-valued instruments to control for selection bias in this setting. We esta
Evaluating Treatment Protocols Using Data Combination
Language: en
Pages:
Authors: Debopam Bhattacharya
Categories:
Type: BOOK - Published: 2012 - Publisher:

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Estimation of Average Treatment Effects Using Panel Data when Treatment Effect Heterogeneity Depends on Unobserved Fixed Effects
Language: en
Pages: 0
Authors: Shosei Sakaguchi
Categories:
Type: BOOK - Published: 2019 - Publisher:

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This paper proposes a new panel data approach to identify and estimate the time-varying average treatment effect (ATE). The approach allows for treatment effect
Handbook of Quantile Regression
Language: en
Pages: 739
Authors: Roger Koenker
Categories: Mathematics
Type: BOOK - Published: 2017-10-12 - Publisher: CRC Press

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Quantile regression constitutes an ensemble of statistical techniques intended to estimate and draw inferences about conditional quantile functions. Median regr