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Medical decision support tool from a fuzzy-rules driven Bayesian network

  • Vasilios Zarikas
  • , Elpiniki Papageorgiou
  • , Damira Pernebayeva
  • , Nurislam Tursynbek
  • University of Central Greece
  • Nazarbayev University

Результат исследований

Аннотация

The task of carrying out an effective and efficient decision on medical domain is a complex one, since a lot of uncertainty and vagueness is involved. Fuzzy logic and probabilistic methods for handling uncertain and imprecise data both provide an advance towards the goal of constructing an intelligent decision support system (DSS) for medical diagnosis and therapy. This work reports on a successfully developed DSS concerning pneumonia disease. A detailed and clear description of the reasoning behind the core decision making module of the DSS, is included, depicting the proposed methodological issues. The results have shown that the suggested methodology for constructing bayesian networks (BNs) from fuzzy rules gives a front-end decision about the severity of pulmonary infections, providing similar results to those obtained with physicians’ intuition.

Язык оригиналаEnglish
Название основной публикацииICAART 2018 - Proceedings of the 10th International Conference on Agents and Artificial Intelligence
РедакторыJaap van den Herik, Ana Paula Rocha
ИздательSciTePress
Страницы539-549
Число страниц11
Том2
ISBN (электронное издание)9789897582752
DOI
СостояниеPublished - янв. 1 2018
Событие10th International Conference on Agents and Artificial Intelligence, ICAART 2018 - Funchal, Madeira
Продолжительность: янв. 16 2018янв. 18 2018

Серия публикаций

НазваниеICAART 2018 - Proceedings of the 10th International Conference on Agents and Artificial Intelligence
Том2

Conference

Conference10th International Conference on Agents and Artificial Intelligence, ICAART 2018
Страна/TерриторияPortugal
ГородFunchal, Madeira
Период1/16/181/18/18

ASJC Scopus subject areas

  • Software
  • Control and Systems Engineering
  • Artificial Intelligence

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