Please use this identifier to cite or link to this item: https://hdl.handle.net/2445/223176
Title: Evaluating Tool-Augmented ReAct Language Agents
Author: Eguzkitza Zalakain, Jokin
Director/Tutor: Igual Muñoz, Laura
Keywords: Tractament del llenguatge natural (Informàtica)
Intel·ligència artificial
Agents intel·ligents (Programari)
Treballs de fi de màster
Natural language processing (Computer science)
Artificial intelligence
Intelligent agents (Computer software)
Master's thesis
Issue Date: 30-Jun-2025
Abstract: This thesis studies how to evaluate ReAct agents that use external tools. ReAct agents are AI Agents that combine reasoning and tool use (functions), allowing large language models to perform tasks that require accessing external sources of information. These agents are becoming more common in real applications, but evaluating their behaviour remains a challenge. Using LangGraph and LangChain three different AI agents are created using locally deployed LLM models served with Ollama. These agents use open-source tools like Wikipedia, Wikidata, Yahoo Finance and PDF readers. To evaluate them, the project combines rule-based checks with RAGAS metrics to measure tool use, answer quality, factual correctness and context use. The results show that prompt design is very important to guide the agent’s behaviour, and that typical question-answer metrics are not always enough to measure how well an agent works. This work offers a simple and practical way to test LLM agents. All the corresponding code notebook can be found on the following repository, https://github.com/Jokinn9/Evaluating-Tool-Augmented-ReAct-Language-Agents
Note: Treballs finals del Màster de Fonaments de Ciència de Dades, Facultat de matemàtiques, Universitat de Barcelona. Any: 2025. Tutor: Laura Igual Muñoz i Pablo Álvarez
URI: https://hdl.handle.net/2445/223176
Appears in Collections:Màster Oficial - Fonaments de la Ciència de Dades
Programari - Treballs de l'alumnat

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