Papers by Jagrut Nemade

1 papers
Improving Task Diversity in Label Efficient Supervised Finetuning of LLMs (2025.emnlp-main)

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Challenge: Large Language Models (LLMs) have demonstrated remarkable capabilities across domains . but, for challenging tasks, finetuning often requires substantial human annotations - a process that is time-consuming, labor-intensive, and expensive .
Approach: They propose a method that leverages task-diversity as a principle for effective data selection.
Outcome: The proposed method achieves better accuracy than training on the complete dataset (4% increase in MMLU score).

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