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Predictive Analytics with Strategically Missing Data

Author

Listed:
  • Juheng Zhang

    (Department of Operations and Information Systems, University of Massachusetts, Lowell, Massachusetts 01854;)

  • Xiaoping Liu

    (D’Amore-McKim School of Business, Northeastern University, Boston, Massachusetts 02115)

  • Xiao-Bai Li

    (Department of Operations and Information Systems, University of Massachusetts, Lowell, Massachusetts 01854;)

Abstract

We study strategically missing data problems in predictive analytics with regression. In many real-world situations, such as financial reporting, college admission, job application, and marketing advertisement, data providers often conceal certain information on purpose in order to gain a favorable outcome. It is important for the decision-maker to have a mechanism to deal with such strategic behaviors. We propose a novel approach to handle strategically missing data in regression prediction. The proposed method derives imputation values of strategically missing data based on the Support Vector Regression models. It provides incentives for the data providers to disclose their true information. We show that with the proposed method imputation errors for the missing values are minimized under some reasonable conditions. An experimental study on real-world data demonstrates the effectiveness of the proposed approach.

Suggested Citation

  • Juheng Zhang & Xiaoping Liu & Xiao-Bai Li, 2020. "Predictive Analytics with Strategically Missing Data," INFORMS Journal on Computing, INFORMS, vol. 32(4), pages 1143-1156, October.
  • Handle: RePEc:inm:orijoc:v:32:y:4:i:2020:p:1143-1156
    DOI: 10.1287/ijoc.2019.0947
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    References listed on IDEAS

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    2. Feng, Qianqian & Sun, Xiaolei & Hao, Jun & Li, Jianping, 2021. "Predictability dynamics of multifactor-influenced installed capacity: A perspective of country clustering," Energy, Elsevier, vol. 214(C).

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