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Treating Words as Data with Error: Uncertainty in Text Statements of Policy Positions

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  • Kenneth Benoit
  • Michael Laver
  • Slava Mikhaylov

Abstract

Political text offers extraordinary potential as a source of information about the policy positions of political actors. Despite recent advances in computational text analysis, human interpretative coding of text remains an important source of text‐based data, ultimately required to validate more automatic techniques. The profession's main source of cross‐national, time‐series data on party policy positions comes from the human interpretative coding of party manifestos by the Comparative Manifesto Project (CMP). Despite widespread use of these data, the uncertainty associated with each point estimate has never been available, undermining the value of the dataset as a scientific resource. We propose a remedy. First, we characterize processes by which CMP data are generated. These include inherently stochastic processes of text authorship, as well as of the parsing and coding of observed text by humans. Second, we simulate these error‐generating processes by bootstrapping analyses of coded quasi‐sentences. This allows us to estimate precise levels of nonsystematic error for every category and scale reported by the CMP for its entire set of 3,000‐plus manifestos. Using our estimates of these errors, we show how to correct biased inferences, in recent prominently published work, derived from statistical analyses of error‐contaminated CMP data.

Suggested Citation

  • Kenneth Benoit & Michael Laver & Slava Mikhaylov, 2009. "Treating Words as Data with Error: Uncertainty in Text Statements of Policy Positions," American Journal of Political Science, John Wiley & Sons, vol. 53(2), pages 495-513, April.
  • Handle: RePEc:wly:amposc:v:53:y:2009:i:2:p:495-513
    DOI: 10.1111/j.1540-5907.2009.00383.x
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    Cited by:

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    2. Laura K. Nelson & Derek Burk & Marcel Knudsen & Leslie McCall, 2021. "The Future of Coding: A Comparison of Hand-Coding and Three Types of Computer-Assisted Text Analysis Methods," Sociological Methods & Research, , vol. 50(1), pages 202-237, February.
    3. Enriqueta Aragonès & Dimitrios Xefteris, 2017. "Imperfectly Informed Voters And Strategic Extremism," International Economic Review, Department of Economics, University of Pennsylvania and Osaka University Institute of Social and Economic Research Association, vol. 58(2), pages 439-471, May.
    4. Auffenberg, Jennie & Marcinkiewicz, Kamil, 2013. "Wer gestaltet, wer verwaltet Reformen im öffentlichen Dienst? Ein Methodenvergleich zur Analyse von Arbeitsbeziehungen in Reformprozessen anhand der Polizei Brandenburg," TranState Working Papers 170, University of Bremen, Collaborative Research Center 597: Transformations of the State.
    5. Leif Helland, 2011. "Partisan conflicts and parliamentary dominance: the Norwegian political business cycle," Public Choice, Springer, vol. 147(1), pages 139-154, April.
    6. Tim Veen, 2011. "Positions and salience in European Union politics: Estimation and validation of a new dataset," European Union Politics, , vol. 12(2), pages 267-288, June.
    7. Osterloh, Steffen, 2012. "Words speak louder than actions: The impact of politics on economic performance," Journal of Comparative Economics, Elsevier, vol. 40(3), pages 318-336.
    8. André Krouwel & Annemarie Elfrinkhof, 2014. "Combining strengths of methods of party positioning to counter their weaknesses: the development of a new methodology to calibrate parties on issues and ideological dimensions," Quality & Quantity: International Journal of Methodology, Springer, vol. 48(3), pages 1455-1472, May.
    9. Marcinkiewicz, Kamil & Auffenberg, Jennie & Kittel, Bernhard, 2012. "Politikpositionen im Reformprozess des öffentlichen Dienstes: Zur Übertragbarkeit der quantitativen Textanalyse," TranState Working Papers 162, University of Bremen, Collaborative Research Center 597: Transformations of the State.
    10. Thomas König & Bernd Luig, 2012. "Party ideology and legislative agendas: Estimating contextual policy positions for the study of EU decision-making," European Union Politics, , vol. 13(4), pages 604-625, December.
    11. Petya Alexandrova & Marcello Carammia & Sebastian Princen & Arco Timmermans, 2014. "Measuring the European Council agenda: Introducing a new approach and dataset," European Union Politics, , vol. 15(1), pages 152-167, March.
    12. Laurenz Ennser‐Jedenastik, 2016. "Do parties matter in delegation? Partisan preferences and the creation of regulatory agencies in Europe," Regulation & Governance, John Wiley & Sons, vol. 10(3), pages 193-210, September.
    13. Rene Lindstadt, Jonathan B. Slapin & Ryan J. Vander Wielen, 2009. "Balancing Competing Demands: Position-Taking and Election Proximity in the European Parliament," The Institute for International Integration Studies Discussion Paper Series iiisdp295, IIIS.
    14. Tim Veen, 2011. "The dimensionality and nature of conflict in European Union politics: On the characteristics of intergovernmental decision-making," European Union Politics, , vol. 12(1), pages 65-86, March.
    15. Osterloh, Steffen, 2018. "How do politics affect economic sentiment? The effects of uncertainty and policy preferences," VfS Annual Conference 2018 (Freiburg, Breisgau): Digital Economy 181614, Verein für Socialpolitik / German Economic Association.
    16. Brian Burgoon, 2013. "Inequality and anti-globalization backlash by political parties," European Union Politics, , vol. 14(3), pages 408-435, September.
    17. Rauh, Christian, 2018. "Validating a sentiment dictionary for German political language—a workbench note," EconStor Open Access Articles and Book Chapters, ZBW - Leibniz Information Centre for Economics, vol. 15(4), pages 319-343.
    18. Giuseppe Albanese & Guido DeBlasio & Lorenzo Incoronato, 2021. "Hooked on a subsidy: transfers and preferences for State intervention," Discussion Paper series in Regional Science & Economic Geography 2021-02, Gran Sasso Science Institute, Social Sciences, revised Feb 2021.
    19. HeeMin Kim & Hyeyoung Yoo & Jungho Roh, 2015. "A re-examination of the effects of the economy, government spending, and incumbent ideology on national policy mood," International Area Studies Review, Center for International Area Studies, Hankuk University of Foreign Studies, vol. 18(4), pages 329-344, December.
    20. Kostas Gemenis, 2015. "An iterative expert survey approach for estimating parties’ policy positions," Quality & Quantity: International Journal of Methodology, Springer, vol. 49(6), pages 2291-2306, November.
    21. Baccini, Leonardo & Dür, Andreas & Elsig, Manfred & Milewicz, Karolina, 2011. "The design of preferential trade agreements: A new dataset in the Making," WTO Staff Working Papers ERSD-2011-10, World Trade Organization (WTO), Economic Research and Statistics Division.
    22. Stefan P. Penczynski, 2019. "Using machine learning for communication classification," Experimental Economics, Springer;Economic Science Association, vol. 22(4), pages 1002-1029, December.

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