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  • Search: subject:"Conditional average treatment effects"
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Year of publication
Subject
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conditional average treatment effects 29 Causality analysis 25 Kausalanalyse 25 Artificial intelligence 23 Künstliche Intelligenz 23 causal machine learning 15 active labour market policy 12 Arbeitsmarktpolitik 11 Impact assessment 11 Labour market policy 11 Wirkungsanalyse 11 Causal machine learning 10 Arbeitslosigkeit 9 Belgien 9 Belgium 9 Unemployment 9 modified causal forest 9 multiple treatments 8 Theorie 7 Theory 7 Conditional average treatment effects 6 Policy evaluation 6 policy evaluation 6 individualized treatment effects 5 random forest 5 selection-on-observables 5 Forestry 4 Forstwirtschaft 4 Monte Carlo simulation 4 Monte-Carlo-Simulation 4 average treatment effects 4 selection-on-observable 4 statistical learning 4 Causal Forest 3 Labour supply 3 Lasso 3 Random Forest 3 causal forests 3 individualized treatment rules 3 optimal policy learning 3
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Online availability
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Free 28 Undetermined 8
Type of publication
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Book / Working Paper 30 Article 6
Type of publication (narrower categories)
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Working Paper 28 Arbeitspapier 20 Graue Literatur 20 Non-commercial literature 20 Article in journal 5 Aufsatz in Zeitschrift 5 Conference Paper 1 Conference paper 1 Konferenzbeitrag 1
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Language
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English 35 Undetermined 1
Author
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Lechner, Michael 22 Strittmatter, Anthony 12 Bollens, Joost 11 Cockx, Bart 11 Knaus, Michael C. 11 Takács, Olga 2 Vincze, János 2 Burlat, Héloïse 1 Di Francesco, Riccardo 1 Ferraro, Paul J. 1 Miranda, Juan José 1
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Published in...
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Discussion paper series / IZA 5 IZA Discussion Papers 5 Discussion paper / Universität Sankt Gallen, School of Economics and Political Science, Department of Economics 4 Discussion papers / CEPR 2 Labour economics : official journal of the European Association of Labour Economists 2 The econometrics journal 2 Beiträge zur Jahrestagung des Vereins für Socialpolitik 2019: 30 Jahre Mauerfall - Demokratie und Marktwirtschaft - Session: Labor Economics VIII 1 CEIS Tor Vergata research papers : CEIS Tor Vergata research paper series 1 CESifo Working Paper 1 CESifo working papers 1 Discussion paper / Centre for Economic Policy Research 1 GLO Discussion Paper 1 GLO discussion paper 1 GSBE research memoranda 1 KRTK-KTI Working Papers 1 KRTK-KTI working papers : KRTK-KTI WP 1 LIDAM discussion paper IRES 1 Labour economics : an international journal 1 ROA research memorandum 1 Resource and Energy Economics 1 Working paper series / Universiteit Gent, Faculteit Economie en Bedrijfskunde 1
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Source
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ECONIS (ZBW) 26 EconStor 9 RePEc 1
Showing 21 - 30 of 36
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Priority to unemployed immigrants? : a causal machine learning evaluation of training in Belgium
Cockx, Bart; Lechner, Michael; Bollens, Joost - 2019
We investigate heterogenous employment effects of Flemish training programmes. Based on administrative individual data, we analyse programme effects at various aggregation levels using Modified Causal Forests (MCF), a causal machine learning estimator for multiple programmes. While all...
Persistent link: https://www.econbiz.de/10012153340
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What is the value added by using causal machine learning methods in a welfare experiment evaluation?
Strittmatter, Anthony - 2019
Recent studies have proposed causal machine learning (CML) methods to estimate conditional average treatment effects …
Persistent link: https://www.econbiz.de/10012161467
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What is the value added by using causal machine learning methods in a welfare experiment evaluation?
Strittmatter, Anthony - 2019 - First Draft: September 17, 2018
I investigate causal machine learning (CML) methods to estimate effect heterogeneity by means of conditional average … treatment effects (CATEs). In particular, I study whether the estimated effect heterogeneity can provide evidence for the …
Persistent link: https://www.econbiz.de/10012232107
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Double machine learning-based programme evaluation under unconfoundedness
Knaus, Michael C. - In: The econometrics journal 25 (2022) 3, pp. 602-627
Persistent link: https://www.econbiz.de/10013399783
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Machine Learning Estimation of Heterogeneous Causal Effects: Empirical Monte Carlo Evidence
Knaus, Michael C.; Lechner, Michael; Strittmatter, Anthony - 2018
We investigate the finite sample performance of causal machine learning estimators for heterogeneous causal effects at different aggregation levels. We employ an Empirical Monte Carlo Study that relies on arguably realistic data generation processes (DGPs) based on actual data. We consider 24...
Persistent link: https://www.econbiz.de/10011984599
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Modified Causal Forests for Estimating Heterogeneous Causal Effects
Lechner, Michael - 2018
Uncovering the heterogeneity of causal effects of policies and business decisions at various levels of granularity provides substantial value to decision makers. This paper develops new estimation and inference procedures for multiple treatment models in a selection-on-observables frame-work by...
Persistent link: https://www.econbiz.de/10011984600
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Machine learning estimation of heterogeneous causal effects : empirical Monte Carlo evidence
Knaus, Michael C.; Lechner, Michael; Strittmatter, Anthony - 2018
Persistent link: https://www.econbiz.de/10012001308
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Machine learning estimation of heterogeneous causal effects : empirical Monte Carlo evidence
Knaus, Michael C.; Lechner, Michael; Strittmatter, Anthony - 2018
We investigate the finite sample performance of causal machine learning estimators for heterogeneous causal effects at different aggregation levels. We employ an Empirical Monte Carlo Study that relies on arguably realistic data generation processes (DGPs) based on actual data. We consider 24...
Persistent link: https://www.econbiz.de/10011958919
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Cover Image
Modified causal forests for estimating heterogeneous causal effects
Lechner, Michael - 2018
Uncovering the heterogeneity of causal effects of policies and business decisions at various levels of granularity provides substantial value to decision makers. This paper develops new estimation and inference procedures for multiple treatment models in a selection-on-observables frame-work by...
Persistent link: https://www.econbiz.de/10011958920
Saved in:
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Machine learning estimation of heterogeneous causal effects : empirical Monte Carlo evidence
Knaus, Michael C.; Lechner, Michael; Strittmatter, Anthony - In: The econometrics journal 24 (2021) 1, pp. 134-161
Persistent link: https://www.econbiz.de/10012504459
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