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Computer Science > Computation and Language

Title: SOTOPIA-$π$: Interactive Learning of Socially Intelligent Language Agents

Abstract: Humans learn social skills through both imitation and social interaction. This social learning process is largely understudied by existing research on building language agents. Motivated by this gap, we propose an interactive learning method, SOTOPIA-$\pi$, improving the social intelligence of language agents. This method leverages behavior cloning and self-reinforcement training on filtered social interaction data according to large language model (LLM) ratings. We show that our training method allows a 7B LLM to reach the social goal completion ability of an expert model (GPT-4-based agent), while improving the safety of language agents and maintaining general QA ability on the MMLU benchmark. We also find that this training paradigm uncovers some difficulties in LLM-based evaluation of social intelligence: LLM-based evaluators overestimate the abilities of the language agents trained specifically for social interaction.
Subjects: Computation and Language (cs.CL)
Cite as: arXiv:2403.08715 [cs.CL]
  (or arXiv:2403.08715v3 [cs.CL] for this version)

Submission history

From: Haofei Yu [view email]
[v1] Wed, 13 Mar 2024 17:17:48 GMT (5227kb,D)
[v2] Thu, 14 Mar 2024 03:13:20 GMT (5227kb,D)
[v3] Thu, 25 Apr 2024 20:23:41 GMT (5308kb,D)

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