Anna Karenina Strikes Again: Pre-Trained LLM Embeddings May Favor High-Performing Learners
June 06, 2024 ยท Declared Dead ยท ๐ Workshop on Innovative Use of NLP for Building Educational Applications
"No code URL or promise found in abstract"
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Authors
Abigail Gurin Schleifer, Beata Beigman Klebanov, Moriah Ariely, Giora Alexandron
arXiv ID
2406.06599
Category
cs.CL: Computation & Language
Cross-listed
cs.AI,
cs.CY,
cs.HC,
cs.IR,
cs.LG
Citations
6
Venue
Workshop on Innovative Use of NLP for Building Educational Applications
Last Checked
5 months ago
Abstract
Unsupervised clustering of student responses to open-ended questions into behavioral and cognitive profiles using pre-trained LLM embeddings is an emerging technique, but little is known about how well this captures pedagogically meaningful information. We investigate this in the context of student responses to open-ended questions in biology, which were previously analyzed and clustered by experts into theory-driven Knowledge Profiles (KPs). Comparing these KPs to ones discovered by purely data-driven clustering techniques, we report poor discoverability of most KPs, except for the ones including the correct answers. We trace this "discoverability bias" to the representations of KPs in the pre-trained LLM embeddings space.
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