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Limited Self-Knowledge and Survey Response Behavior

Author

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  • Armin Falk
  • Thomas Neuber
  • Philipp Strack

Abstract

We study response behavior in surveys and show how the explanatory power of self-reports can be improved. First, we develop a choice model of survey response behavior under the assumption that the respondent has imperfect self-knowledge about her individual characteristics. In panel data, the model predicts that the variance in responses for different characteristics increases in self-knowledge and that the variance for a given characteristic over time is non-monotonic in self-knowledge. Importantly, the ratio of these variances identifies an individual’s level of self-knowledge, i.e. the latter can be inferred from observed response patterns. Second, we develop a consistent and unbiased estimator for self-knowledge based on the model. Third, we run an experiment to test the model’s main predictions in a context where the researcher knows the true underlying characteristics. The data confirm the model’s predictions as well as the estimator’s validity. Finally, we turn to a large panel data set, estimate individual levels of self-knowledge, and show that accounting for differences in self-knowledge significantly increases the explanatory power of regression models. Using a median split in self-knowledge and regressing risky behaviors on self-reported risk attitudes, we find that the R2 can be multiple times larger for above- than below-median subjects. Similarly, gender differences in risk attitudes are considerably larger when restricting samples to subjects with high self-knowledge. These examples illustrate how using the estimator may improve inference from survey data.

Suggested Citation

  • Armin Falk & Thomas Neuber & Philipp Strack, 2021. "Limited Self-Knowledge and Survey Response Behavior," CESifo Working Paper Series 9179, CESifo.
  • Handle: RePEc:ces:ceswps:_9179
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    References listed on IDEAS

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    Cited by:

    1. Mikhalishchev, Sergei, 2023. "Optimal menu when agents make mistakes," Research in Economics, Elsevier, vol. 77(1), pages 25-33.
    2. Jose Apesteguia & Miguel Ángel Ballester, 2023. "The Rationalizability of Survey Responses," Working Papers 1393, Barcelona School of Economics.
    3. Michelle Acampora & Francesco Capozza & Vahid Moghani, 2022. "Mental Health Literacy, Beliefs and Demand for Mental Health Support among University Students," Tinbergen Institute Discussion Papers 22-079/I, Tinbergen Institute.
    4. Jose Apesteguia & Miguel A. Ballester, 2023. "The rationalizability of survey responses," Economics Working Papers 1863, Department of Economics and Business, Universitat Pompeu Fabra.

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    More about this item

    JEL classification:

    • C83 - Mathematical and Quantitative Methods - - Data Collection and Data Estimation Methodology; Computer Programs - - - Survey Methods; Sampling Methods
    • D83 - Microeconomics - - Information, Knowledge, and Uncertainty - - - Search; Learning; Information and Knowledge; Communication; Belief; Unawareness
    • C91 - Mathematical and Quantitative Methods - - Design of Experiments - - - Laboratory, Individual Behavior
    • D91 - Microeconomics - - Micro-Based Behavioral Economics - - - Role and Effects of Psychological, Emotional, Social, and Cognitive Factors on Decision Making
    • J24 - Labor and Demographic Economics - - Demand and Supply of Labor - - - Human Capital; Skills; Occupational Choice; Labor Productivity

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