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Exploring the Potential of LLMs as Personalized Assistants: Dataset, Evaluation, and Analysis

Published: June 2, 2025 | arXiv ID: 2506.01262v1

By: Jisoo Mok , Ik-hwan Kim , Sangkwon Park and more

Potential Business Impact:

Helps AI assistants learn to talk like you.

Business Areas:
Natural Language Processing Artificial Intelligence, Data and Analytics, Software

Personalized AI assistants, a hallmark of the human-like capabilities of Large Language Models (LLMs), are a challenging application that intertwines multiple problems in LLM research. Despite the growing interest in the development of personalized assistants, the lack of an open-source conversational dataset tailored for personalization remains a significant obstacle for researchers in the field. To address this research gap, we introduce HiCUPID, a new benchmark to probe and unleash the potential of LLMs to deliver personalized responses. Alongside a conversational dataset, HiCUPID provides a Llama-3.2-based automated evaluation model whose assessment closely mirrors human preferences. We release our dataset, evaluation model, and code at https://github.com/12kimih/HiCUPID.

Country of Origin
🇰🇷 Korea, Republic of

Repos / Data Links

Page Count
28 pages

Category
Computer Science:
Computation and Language