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Active learning increases student performance in science, engineering, and mathematics

Proceedings of the National Academy of Sciences · 2014 · Vol. 111(23) · pp. 8410–8415
Scott FreemanSarah L. EddyMiles McDonoughMichelle K. SmithNnadozie OkoroaforHannah JordtMary Pat Wenderoth

Abstract

To test the hypothesis that lecturing maximizes learning and course performance, we metaanalyzed 225 studies that reported data on examination scores or failure rates when comparing student performance in undergraduate science, technology, engineering, and mathematics (STEM) courses under traditional lecturing versus active learning. The effect sizes indicate that on average, student performance on examinations and concept inventories increased by 0.47 SDs under active learning (n = 158 studies), and that the odds ratio for failing was 1.95 under traditional lecturing (n = 67 studies). These results indicate that average examination scores improved by about 6% in active learning sections, and that students in classes with traditional lecturing were 1.5 times more likely to fail than were students in classes with active learning. Heterogeneity analyses indicated that both results hold across the STEM disciplines, that active learning increases scores on concept inventories more than on course examinations, and that active learning appears effective across all class sizes--although the greatest effects are in small (n ≤ 50) classes. Trim and fill analyses and fail-safe n calculations suggest that the results are not due to publication bias. The results also appear robust to variation in the methodological rigor of the included studies, based on the quality of controls over student quality and instructor identity. This is the largest and most comprehensive metaanalysis of undergraduate STEM education published to date. The results raise questions about the continued use of traditional lecturing as a control in research studies, and support active learning as the preferred, empirically validated teaching practice in regular classrooms.

Innovative Teaching MethodsExperimental Learning in EngineeringEducation and Critical Thinking DevelopmentBachelorActive learning (machine learning)Mathematics educationPsychologyMathematicsPolitical scienceStatistics

MeSH terms

AchievementEngineeringHumansMathematicsScienceStudentsTechnologyUniversitiesMeta-Analysis as TopicMental CompetencyProblem-Based LearningComprehension
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References
Digest of Education Statistics
Choice Reviews Online · 2014 · 6,312 citations
Science and Engineering Indicators 1998
Journal of Chemical Education · 1998 · 1,337 citations
A Guided-Inquiry General Chemistry Course
Journal of Chemical Education · 1999 · 398 citations
Talking about Leaving: Why Undergraduates Leave the Sciences
Contemporary Sociology A Journal of Reviews · 1997 · 3,116 citations
Peer Instruction: Ten years of experience and results
American Journal of Physics · 2001 · 2,633 citations
Does discovery-based instruction enhance learning?
Journal of Educational Psychology · 2010 · 1,296 citations
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