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[ARTICLE · art-93001] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=· neutral

Multimodal Item Parameter Estimation using Simulated Response Probabilitie

Researchers at an unnamed institution used a fine-tuned multimodal large language model based on Qwen3.5 to reconstruct multiple-choice model (MCM) and three-parameter logistic (3PL) item response curves, accurately approximating item difficulty on a held-out test set by learning to replicate student choice probabilities across ability levels.

read1 min views1 publishedAug 12, 2026

arXiv:2608.10154v1 Announce Type: new Abstract: We present results from reconstructing multiple-choice model (MCM) and three-parameter logistic (3PL) model curves using a fine-tuned multimodal large language model (LLM) based on Qwen3.5. The model is prompted and fine-tuned to replicate choice probabilities across a large training corpus of multiple-choice items containing both image and text stimuli, conditioned on a labeled set of student ability levels. By learning to reproduce the systematic error patterns of students across a discrete range of abilities, the LLM implicitly captures the underlying response probabilities encoded in the 3PL and MCM curves. This allows us to accurately approximate item difficulty on a held-out test set directly from the model's predicted option probabilities.

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