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Published on: June 30, 2020
Probabilities and predictions: modeling the development of scientific problem-solving skills
Ron Stevens1, David F Johnson, Amy Soller
1UCLA IMMEX Project, 5601 W. Slauson Avenue, Suite 255, Culver City, CA 90230, USA.
This study models student strategies in molecular genetics simulations, finding that initial abilities influence approach. Early interventions can guide students toward effective problem-solving and enhance learning.
Area of Science:
- Educational Technology
- Molecular Genetics Education
- Computational Biology in Education
Background:
- The Interactive Multi-Media Exercises (IMMEX) platform facilitates online multimedia simulations for genetics education.
- Utilizing IMMEX data for formative assessment and understanding student learning is a key next step.
- Previous research has not fully detailed the evolution of student problem-solving strategies in molecular genetics.
Purpose of the Study:
- To develop probabilistic models of undergraduate student problem-solving in molecular genetics.
- To analyze the spectrum of strategies students employ and how these evolve with experience.
- To identify factors influencing strategy selection and learning progression.
Main Methods:
- Recorded and analyzed the actions of 776 undergraduate biology majors across six molecular genetics simulations.
- Employed artificial neural network clustering to group simulation performances and derive individual measures.
- Utilized hidden Markov modeling to probabilistically model sequences of performances and assess progress.
Main Results:
- Probabilistic models revealed that students with different initial problem-solving abilities adopt distinct strategies.
- Observed variations in initial and final strategies across different course sections, with no strong correlation to other achievement measures.
- Found no significant gender differences in problem-solving strategies, contrary to some previous studies.
Conclusions:
- Student problem-solving strategies in molecular genetics are diverse and influenced by initial abilities.
- Early instructor interventions, informed by simulation performance, can guide students toward more effective strategies.
- This approach holds potential for enhancing student learning and improving the efficiency of problem-solving in molecular genetics.
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