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What to Gain from Technical Sophistication

Datos Bibliográficos

ID12379629
AutoresYuhang Shi (0000-0003-3448-1116, East Carolina University, autor de correspondencia)
Año1995
Volumen28
Número3
Páginas505-506
Fecha de publicación1995-09-01
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaPS Political Science & Politics (JOURNAL)
Identificadores de la revistaISSN: 1049-0965 • E-ISSN: 1537-5935
EditorialCambridge University Press (CUP) (PUBLISHER)
DOI10.2307/420319
OpenAlexW2014645437
IdiomaEN
Referencias citadas7

In a recent article in this journal, James McGregor (1993) criticizes political scientists for practicing regression analysis without recognizing the limitations in the regression technique. McGregor argues that the technique is inappropriate for political science research in many cases and suggests that we pay close attention to both the substantive (e.g., linearity and additivity) and statistical aspects of the technique. While acknowledging that many of us have not done enough to meet the statistical assumptions of regression analysis, George Krause (1994) argues that McGregor has underestimated the value of the technique to political science research. To support his argument, Krause directs our attention to a number of complicated regression models, including those designed for situations in which the dependent measure is a discrete variable (logit, probit, ordered probit, multinomial logit, Poisson, negative binomial and generalized event count) or the independent effects on the dependent variable are lagged distributed (polynomial distributed lag). He also mentions the recent developments related to event history regression, bootstrapping (a nonparametric approach to statistical inference), and vector autoregression (VAR, a creative use of OLS in simultaneous time series data). Krause deserves credit for his attempt to show us that the scope of the regression technique is not as narrow as McGregor might have assumed. However, in rejecting McGregor's pessimism, Krause does not realize that McGregor's major concern with regression analysis, as he illuminates by applying OLS to certain laws of nature, is not about the type of dependent variable but about relationships

Econometrics · Economics · Logit · Multinomial logistic regression · Polynomial regression · Probit · Probit model · Regression analysis · Regression diagnostic · Statistics · Variables · Electoral Systems and Political Participation · Mathematics · Political Conflict and Governance · Qualitative Comparative Analysis Research

  • Specification searches

    Edward E Leamer•Specification searches•1978

  • Is Regression Analysis Really Leading Political Science Down a Blind Alley

    Open Access•George Krause•PS Political Science & Politics•1994

  • Procrustus and the Regression Model

    Open Access•James P Mcgregor•PS Political Science & Politics•1993

  • Statistical Foundations of Econometric Modelling

    Hedley Rees, Aris Spanos•The Economic Journal•1988

  • The Relationship between Seats and Votes in Two-Party Systems

    Open Access•Edward R Tufte•American Political Science Review•1973

  • Enhancing Democracy Through Legislative Redistricting

    Open Access•Andrew Gelman, Gary King•American Political Science Review•1994

  • The Election of Blacks to City Councils

    Open Access•Richard L Engstrom, Michael D Mcdonald•American Political Science Review•1981

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