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  • Search: subject:"Cluster-robust variance estimator"
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Year of publication
Subject
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cluster-robust variance estimator 27 CRVE 26 clustered data 24 Cluster analysis 22 Clusteranalyse 22 wild cluster bootstrap 22 Estimation theory 21 Regional cluster 21 Regionales Cluster 21 Schätztheorie 21 Bootstrap approach 19 Bootstrap-Verfahren 19 grouped data 18 robust inference 18 Induktive Statistik 14 Statistical inference 14 Clustered data 10 wild bootstrap 8 inference 6 cluster jackknife 5 cluster sizes 5 Cluster-robust variance estimator 4 Edgeworth expansion 4 Robust inference 4 Wild cluster bootstrap 4 jackknife 4 Grouped data 3 Monte Carlo simulation 3 Monte-Carlo-Simulation 3 Regression analysis 3 Regressionsanalyse 3 two-way clustering 3 Statistical error 2 Statistischer Fehler 2 WCR bootstrap 2 WREC bootstrap 2 Wild bootstrap 2 bootstrap 2 bootstrap Wald test 2 cluster-robust variance estima-tor 2
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Online availability
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Free 29 Undetermined 5 CC license 1
Type of publication
All
Book / Working Paper 27 Article 7
Type of publication (narrower categories)
All
Working Paper 27 Arbeitspapier 15 Graue Literatur 15 Non-commercial literature 15 Article in journal 7 Aufsatz in Zeitschrift 7
Language
All
English 34
Author
All
MacKinnon, James G. 33 Nielsen, Morten Ørregaard 27 Webb, Matthew 22 Djogbenou, Antoine A. 4 Djogbenou, Antoine 2 Webb, Matthew D. 2 Niccodemi, Gianmaria 1 Nielsen, Morten Ørregard 1 Wansbeek, Tom 1
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Published in...
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Queen's Economics Department working paper 12 Queen’s Economics Department Working Paper 9 CREATES research paper 3 Journal of econometrics 3 Queen's Economics Department Working Paper 3 Econometrics : open access journal 1 Journal of applied econometrics 1 Journal of business & economic statistics : JBES ; a publication of the American Statistical Association 1 The econometrics journal 1
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Source
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ECONIS (ZBW) 22 EconStor 12
Showing 1 - 10 of 34
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Cluster-robust jackknife and bootstrap inference for binary response models
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - 2024
We study cluster-robust inference for binary response models. Inference based on the most commonly-used cluster-robust variance matrix estimator (CRVE) can be very unreliable. We study several alternatives. Conceptually the simplest of these, but also the most computationally demanding, involves...
Persistent link: https://www.econbiz.de/10015051838
Saved in:
Cover Image
Jackknife inference with two-way clustering
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - 2024
For linear regression models with cross-section or panel data, it is natural to assume that the disturbances are clustered in two dimensions. However, the finite-sample properties of two-way cluster-robust tests and confidence intervals are often poor. We discuss several ways to improve...
Persistent link: https://www.econbiz.de/10015051864
Saved in:
Cover Image
Cluster-robust jackknife and bootstrap inference for binary response models
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - 2024
We study cluster-robust inference for binary response models. Inference based on the most commonly-used cluster-robust variance matrix estimator (CRVE) can be very unreliable. We study several alternatives. Conceptually the simplest of these, but also the most computationally demanding, involves...
Persistent link: https://www.econbiz.de/10015048740
Saved in:
Cover Image
Jackknife inference with two-way clustering
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - 2024
For linear regression models with cross-section or panel data, it is natural to assume that the disturbances are clustered in two dimensions. However, the finite-sample properties of two-way cluster-robust tests and confidence intervals are often poor. We discuss several ways to improve...
Persistent link: https://www.econbiz.de/10015048741
Saved in:
Cover Image
Fast and reliable jackknife and bootstrap methods for cluster-robust inference
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - In: Journal of applied econometrics 38 (2023) 5, pp. 671-694
Persistent link: https://www.econbiz.de/10014338128
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Fast and reliable jackknife and bootstrap methods for cluster-robust inference
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - 2022
We provide new and computationally attractive methods, based on jackknifing by cluster, to obtain cluster-robust variance matrix estimators (CRVEs) for linear regres- sion models estimated by least squares. These estimators have previously been com- putationally infeasible except for small...
Persistent link: https://www.econbiz.de/10014451087
Saved in:
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Leverage, influence, and the jackknife in clustered regression models: Reliable inference using summclust
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - 2022
Cluster-robust inference is widely used in modern empirical work in economics and many other disciplines. The key unit of observation is the cluster. We propose measures of "high-leverage" clusters and "influential" clusters for linear regression models. The measures of leverage and partial...
Persistent link: https://www.econbiz.de/10013254705
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A new estimator for standard errors with few unbalanced clusters
Niccodemi, Gianmaria; Wansbeek, Tom - In: Econometrics : open access journal 10 (2022) 1, pp. 1-7
lead to a severe downward bias in the standard errors. This idea of a cluster-robust variance estimator (CRVE) generalizes …
Persistent link: https://www.econbiz.de/10012805054
Saved in:
Cover Image
Fast and reliable jackknife and bootstrap methods for cluster-robust inference
MacKinnon, James G.; Nielsen, Morten Ørregaard; Webb, … - 2022
We provide new and computationally attractive methods, based on jackknifing by cluster, to obtain cluster-robust variance matrix estimators (CRVEs) for linear regres- sion models estimated by least squares. These estimators have previously been com- putationally infeasible except for small...
Persistent link: https://www.econbiz.de/10013172440
Saved in:
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Cluster-robust inference : a guide to empirical practice
MacKinnon, James G.; Nielsen, Morten Ørregaard - 2022
Persistent link: https://www.econbiz.de/10013189456
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