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Reconciling Statistical and Systems Science Approaches to Public Health

  • Edward H. Ip
  • , Hazhir Rahmandad
  • , David A. Shoham
  • , Ross Hammond
  • , Terry T.K. Huang
  • , Youfa Wang
  • , Patricia L. Mabry
  • Wake Forest University
  • Virginia Polytechnic Institute and State University
  • Loyola University Chicago
  • The Brookings Institution
  • University of Nebraska Medical Center
  • Johns Hopkins University
  • National Institutes of Health

Research output: Contribution to journalArticlepeer-review

51 Scopus citations

Abstract

Although systems science has emerged as a set of innovative approaches to study complex phenomena, many topically focused researchers including clinicians and scientists working in public health are somewhat befuddled by this methodology that at times appears to be radically different from analytic methods, such as statistical modeling, to which the researchers are accustomed. There also appears to be conflicts between complex systems approaches and traditional statistical methodologies, both in terms of their underlying strategies and the languages they use. We argue that the conflicts are resolvable, and the sooner the better for the field. In this article, we show how statistical and systems science approaches can be reconciled, and how together they can advance solutions to complex problems. We do this by comparing the methods within a theoretical framework based on the work of population biologist Richard Levins. We present different types of models as representing different tradeoffs among the four desiderata of generality, realism, fit, and precision.

Original languageEnglish
Pages (from-to)123S-131S
JournalHealth Education and Behavior
Volume40
Issue number1 SUPPL.
DOIs
StatePublished - 2013
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Levins framework
  • agent-based model
  • childhood obesity
  • complex systems
  • computational model
  • social network analysis
  • statistical model
  • system dynamics model

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