Tesi etd-03212025-112442 |
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Tipo di tesi
Tesi di laurea magistrale
Autore
BISCONTI, ELIA
URN
etd-03212025-112442
Titolo
Towards Personalized Explainability: The Development of a Modular Recommender System to Assess Explanation Suitability for Different Personas
Dipartimento
INFORMATICA
Corso di studi
INFORMATICA
Relatori
relatore Prof.ssa Monreale, Anna
correlatore Prof.ssa Naretto, Francesca
correlatore Dott. Corbucci, Luca
correlatore Prof.ssa Naretto, Francesca
correlatore Dott. Corbucci, Luca
Parole chiave
- explainability
- explainer
- persona
- personalized explainability
- recommender system
Data inizio appello
11/04/2025
Consultabilità
Non consultabile
Data di rilascio
11/04/2028
Riassunto
This thesis presents the analysis and development of a modular Recommender System designed to assess the suitability of specific explanations for different Personas. The system leverages the analysis of three post-hoc explainers - Local Interpretable Model-Agnostic Explanations (LIME), High-Precision Model-Agnostic Explanations (Anchors), and LOcal Rule-based Explanations (LORE) — and incorporates a lightweight definition of Personas with specific preferences. The core idea is that users may have different needs or capabilities when interacting with explainers, and the system is designed to recommend the most suitable explanation for each user type based on predefined and evolving preferences, reflecting changing user behaviors or contexts. The system supports a personalized approach to explainability, moving beyond the limitations of a one-size-fits-all paradigm.
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