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Automated grading of Linux/bash examinations using large language models: a four-level cognitive taxonomy approach
This paper evaluates the use of large language models for grading command-line examinations.
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By Manuel Alonso-Carracedo, Ruben Fernandez-Boullon, Pedro Celard, Francisco J. Rodriguez-Martinez, Lorena Otero-CerdeiraarXiv
Read original article →The study assesses four frontier LLMs (GPT, Claude Opus, Gemini, and GLM) in approximating expert judgment when grading short Linux/bash command responses.
The models were tested on real responses from second-year Computer Engineering students and found that question complexity is a reliable predictor of the difficulty LLMs face in grading accurately.
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