Artikel
Testing cross-sectional correlation in large panel data models with serial correlation
This paper considers the problem of testing cross-sectional correlation in large panel data models with serially-correlated errors. It finds that existing tests for cross-sectional correlation encounter size distortions with serial correlation in the errors. To control the size, this paper proposes a modification of Pesaran's Cross-sectional Dependence (CD) test to account for serial correlation of an unknown form in the error term. We derive the limiting distribution of this test as (N, T) -> ∞ . The test is distribution free and allows for unknown forms of serial correlation in the errors. Monte Carlo simulations show that the test has good size and power for large panels when serial correlation in the errors is present.
- Sprache
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Englisch
- Erschienen in
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Journal: Econometrics ; ISSN: 2225-1146 ; Volume: 4 ; Year: 2016 ; Issue: 4 ; Pages: 1-24 ; Basel: MDPI
- Klassifikation
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Wirtschaft
Estimation: General
Multiple or Simultaneous Equation Models: Panel Data Models; Spatio-temporal Models
- Thema
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cross-sectional correlation test
serial correlation
large panel data model
- Ereignis
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Geistige Schöpfung
- (wer)
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Baltagi, Badi H.
Kao, Chihwa
Peng, Bin
- Ereignis
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Veröffentlichung
- (wer)
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MDPI
- (wo)
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Basel
- (wann)
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2016
- DOI
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doi:10.3390/econometrics4040044
- Handle
- Letzte Aktualisierung
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10.03.2025, 11:46 MEZ
Datenpartner
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Objekttyp
- Artikel
Beteiligte
- Baltagi, Badi H.
- Kao, Chihwa
- Peng, Bin
- MDPI
Entstanden
- 2016