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Published on: September 11, 2021
Student motivation and instructional clarity: Linking experience sampling method data to objective behavioural
Alina Oschwald1, Julia Moeller2, Bärbel Kracke1
1Institute of Educational Science, Friedrich Schiller University Jena, Jena, Germany.
Instructional clarity in lectures did not predict overall student motivation. However, detailed explanations positively influenced students
Area of Science:
- Educational Psychology
- Higher Education Pedagogy
- Learning Sciences
Background:
- Student motivation is influenced by situational factors, including teaching behaviors.
- Instructional clarity is a key teaching behavior hypothesized to impact student expectancies and task values.
- Previous research often relies on self-report data, necessitating combined objective and subjective measures.
Purpose of the Study:
- To investigate the relationship between lecturers' instructional clarity and university students' learning motivation.
- To combine experience sampling method (ESM) data on student motivation with video-coded instructional clarity.
- To examine how specific indicators of instructional clarity predict different facets of student motivation.
Main Methods:
- Utilized a dataset combining ESM self-reports of motivation from 155 preservice teachers over 10 weeks.
- Collected and qualitatively coded video recordings of 81 lecturers for instructional clarity (detail, variation, inconsistency).
- Employed cross-classified multilevel models to analyze the nested data structure (situations within students, clarity ratings).
Main Results:
- No significant association was found between overall instructional clarity indicators and global measures of motivation.
- Detailed explanation, a facet of instructional clarity, positively predicted students' expectations of success.
- Detailed explanation also positively predicted students' perceptions of effort costs.
Conclusions:
- While overall instructional clarity may not directly impact global motivation, specific components like detailed explanations are influential.
- Combining objective observational data (videos) with subjective self-reports (ESM) offers a robust approach to studying teaching-learning dynamics.
- This methodology provides a more nuanced understanding of how teaching behaviors affect student motivation in authentic learning environments.
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