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PMID: 3512161 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Representation and semiautomatic acquisition of medical knowledge in CADIAG-1 and CADIAG-2.

Computers and biomedical research, an international journal ·Vol. 19 ·No. 1 ·1986-02-00 ·Pages 63-79

Adlassnig KP, Kolarz G

Abstract

CADIAG-1 and CADIAG-2 (Computer-Assisted DIAGnosis) are medical expert systems especially designed for ill-defined areas such as internal medicine. Both systems are being tested in the setting of a medical information system. With respect to their knowledge representation, CADIAG-1 has obvious advantages in totally ill-defined areas such as syndromes in internal medicine, whereas CADIAG-2 seems more suited for domains with basic laboratory programs, e.g., hepatology or gall bladder and bile duct diseases. The formalization of relationships between medical entities led to first-order predicate calculus formulas in the case of CADIAG-1 and to a model based on fuzzy set theory in the case of CADIAG-2. In both systems two kinds of relationships between medical entities are considered: (1) necessity of occurrence and (2) sufficiency of occurrence. Statistical interpretations using the 2 X 2 table paradigm yield a way to calculate these relationships automatically from samples of patient data. Results obtained by exploiting 3530 patient records from a rheumatological hospital are presented. The described application is a machine-learning program that allows inductive learning from examples under statistical uncertainty.

MeSH Terms
Artificial Intelligence Diagnosis, Computer-Assisted/methods Models, Theoretical Rheumatology Statistics as Topic
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Adlassnig K P
Kolarz G
Article Info
Journal
Computers and biomedical research, an international journal
Abbr.
Comput Biomed Res
ISSN
0010-4809
Published
1986-02-00
Pages
63-79
Language
English
Region
United States
NLM ID
0100331
Subset
IM
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