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Mémoire de Maîtrise
DOI
https://doi.org/10.11606/D.3.2022.tde-26072023-084455
Document
Auteur
Nom complet
Gustavo Padilha Polleti
Adresse Mail
Unité de l'USP
Domain de Connaissance
Date de Soutenance
Editeur
São Paulo, 2022
Directeur
Jury
Cozman, Fabio Gagliardi (Président)
Pinhanez, Claudio Santos
Roman, Norton Trevisan
Titre en portugais
Geração de explicações para sistemas de recomendação conversacionais baseados em embeddings de conhecimento.
Mots-clés en portugais
Aprendizado computacional
Grafo de conhecimento
Interpretabilidade
Sistema de recomendação conversacional
Resumé en portugais
Sem Resumo
Titre en anglais
Explanation generation for conversational recommendation systems based on knowledge embeddings.
Mots-clés en anglais
Conversational recommendation system
Explanation
Interpretability
Knowledge embedding
Knowledge graph
Recommendation system
Resumé en anglais
Conversational agents or chatbots are increasingly employed in commercial applications to answer questions and to recommend items. Despite their success, they usually behave as black-boxes from the user perspective, typically failing to produce high quality human-computer interactions. Thus interpretability is a major concern for the next generation of recommendation systems. This work addresses challenges related to the development of a recommendation system that can explain its own suggestions. Furthermore, this work evaluates the impact of dierent explanation generation techniques both in simulated interactions and in tests with human subjects. This work present novel model-agnostic methods that address challenges of explanation generation in the context of knowledge embedding based conversational recommendation systems, such as: explanation delity, graph incompleteness, time to response constraints and reasons against generation. Finally, this research evaluates the technical feasibility of such methods with simulated experiments and shows preliminary on user perception of the generated explanations.
 
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Date de Publication
2023-07-31
 
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