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Tyler Marques

3 papers

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papers

Publications (3)

cs.LG2026

Data-Centric Interpretability for LLM-based Multi-Agent Reinforcement Learning

John Yan, Michael Yu, Yuqi Sun +3

Large language models (LLMs) are increasingly trained in complex Reinforcement Learning, multi-agent environments, making it difficult to understand how behavior changes over train…

cs.AI2025

Democratizing Diplomacy: A Harness for Evaluating Any Large Language Model on Full-Press Diplomacy

Alexander Duffy, Samuel J Paech, Ishana Shastri +4

We present the first evaluation harness that enables any out-of-the-box, local, Large Language Models (LLMs) to play full-press Diplomacy without fine-tuning or specialized trainin…

cs.AI2026

Co-Evolving LLM Decision and Skill Bank Agents for Long-Horizon Tasks

Xiyang Wu, Zongxia Li, Guangyao Shi +5

Long horizon interactive environments are a testbed for evaluating agents skill usage abilities. These environments demand multi step reasoning, the chaining of multiple skills ove…

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