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Explaining Bayesian Networks in Natural Language using Factor Arguments: Evaluation in the medical domain

  • Jaime Sevilla Molina
  • , Nikolay Babakov* (Corresponding Author)
  • , Ehud Reiter
  • , Alberto Bugarín
  • *Corresponding author for this work
  • University of Santiago de Compostela

Research output: Contribution to conferenceConference presentation (Unpublished paper)peer-review

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Abstract

In this paper, we propose a model for building natural language explanations for Bayesian Network Reasoning in terms of factor arguments, which are argumentation graphs of flowing evidence, relating the observed evidence to a target variable we want to learn about. We introduce the notion of factor
argument independence to address the outstanding question of defining when arguments should be presented jointly or separately and present an algorithm that, starting from the evidence nodes and a target node, produces a list of all independent factor arguments ordered by their strength. Finally, we
implemented a scheme to build natural language explanations of Bayesian Reasoning using this approach. Our proposal has been validated in the medical domain through a human-driven evaluation study where we compare the Bayesian Network Reasoning explanations obtained using factor arguments with an alternative explanation method. Evaluation results indicate that our proposed explanation approach is deemed by users as significantly more useful for understanding Bayesian Network Reasoning than another existing explanation method it is compared to.
Original languageEnglish
Number of pages31
Publication statusPublished - 2024
EventEXPLIMED - First Workshop on Explainable Artificial Intelligence for the medical domain - Santiago de Compostela, Spain
Duration: 20 Oct 202420 Oct 2024
https://sites.google.com/view/explimed/home-page

Conference

ConferenceEXPLIMED - First Workshop on Explainable Artificial Intelligence for the medical domain
Abbreviated titleEXPLIMED
Country/TerritorySpain
CitySantiago de Compostela
Period20/10/2420/10/24
Internet address

Bibliographical note

The BNs used for the experiments in this work are available on bnlearn website

Funding

This research was funded by the European Union’s Horizon 2020 research and innovation program under the Marie Skodowska-Curie grant agreement No 860621, and the Galician Ministry of Culture, Education, Professional Training, and University and the European Regional Development Fund (ERDF/FEDER program) under grants ED431C2018/29 and ED431G2019/04

Keywords

  • Bayesian Networks explanation
  • Explainable Artificial Intelligence
  • Natural language explanations
  • human evaluation of explanations
  • evaluation in the medical domain

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