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6 - Missing Data

Published online by Cambridge University Press:  14 November 2024

Philip Hans Franses
Affiliation:
Erasmus University
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Summary

This chapter deals with missing data and a few approaches to managing such. There are several reasons why data can be missing. For example, people can throw away older data, which can sometimes be sensible. It may also be the case that you want to analyze a phenomenon that occurs at an hourly level but only have data at the daily level; thus, the hourly data are missing. It may also be that a survey is simply too long, so people get tired and do not answer all questions. In this chapter we review various situations where data are missing and how we can recognize them. Sometimes we know how to manage the situation of missing data. Often there is no need to panic and modifications of models and/or estimation methods can be used. We encounter a case in which data can be made missing on purpose, by selective sampling, to subsequently facilitate empirical analysis. Such analysis explicitly takes account of the missingness, and the impact of missing data can become minor.

Type
Chapter
Information
Ethics in Econometrics
A Guide to Research Practice
, pp. 139 - 160
Publisher: Cambridge University Press
Print publication year: 2024

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References

Further Reading

Stavseth, Marianne Riksheim, Clausen, Thomas, and Røislien, Jo (2019), How handling missing data may impact conclusions: A comparison of six different imputation methods for categorical questionnaire data, Sage Open Medicine, 7, 112.CrossRefGoogle ScholarPubMed
Farhangfar, Alireza, Kurgan, Lukasz, and Dy, Jennifer (2008), Impact of imputation of missing values on classification error for discrete data, Pattern Recognition, 41 (12), 36923705.CrossRefGoogle Scholar
Lall, Ranjit (2016), How multiple imputation makes a difference, Political Analysis, 24, 414433.CrossRefGoogle Scholar
Henrich, Joseph, Heine, Steven J, and Norenzayan, Ara (2010), The weirdest people in the world? Behavioral and Brain Sciences, 33 (2–3), 61135.CrossRefGoogle ScholarPubMed

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  • Missing Data
  • Philip Hans Franses, Erasmus University
  • Book: Ethics in Econometrics
  • Online publication: 14 November 2024
  • Chapter DOI: https://doi.org/10.1017/9781009428033.008
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  • Missing Data
  • Philip Hans Franses, Erasmus University
  • Book: Ethics in Econometrics
  • Online publication: 14 November 2024
  • Chapter DOI: https://doi.org/10.1017/9781009428033.008
Available formats
×

Save book to Google Drive

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Google Drive.

  • Missing Data
  • Philip Hans Franses, Erasmus University
  • Book: Ethics in Econometrics
  • Online publication: 14 November 2024
  • Chapter DOI: https://doi.org/10.1017/9781009428033.008
Available formats
×