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Authors: Carlos Fernández-Llatas ; Teresa Meneu ; Jose Miguel Benedí and Vicente Traver

Affiliation: Universidad Politécnica de Valencia, Spain

Keyword(s): Process mining, Clinical pathways, Pattern recognition, e-Health, Decision support systems, Process standardization.

Related Ontology Subjects/Areas/Topics: Artificial Intelligence ; Biomedical Engineering ; Business Analytics ; Cloud Computing ; Data Engineering ; Data Mining ; Databases and Information Systems Integration ; Datamining ; Decision Support Systems ; e-Health ; Enterprise Information Systems ; Health Information Systems ; Pattern Recognition and Machine Learning ; Platforms and Applications ; Sensor Networks ; Signal Processing ; Soft Computing ; Software Systems in Medicine

Abstract: The standardization of care processes in medicine, like Clinical pathways, is becoming more and more a common practice in health care organizations. Nevertheless, their design is not an easy task. Some approaches in the literature are based on using Workflow technology for defining Clinical Pathways. These approaches allow the creation of unambiguous, complete and automatically executable protocols. In addition to this, the use of Process Mining technology can help the design using information from real executions of Clinical Pathways cases. Nevertheless, to ensure a correct continuous evaluation and improvement of care processes, the creation of a tool that allows to know the current status of the Clinical Pathway execution it’s mandatory. In this paper, we present a tool able to compare the designed Clinical Pathways with the real implantation cases in order to detect their differences. This allows Clinical Pathways designers to improve the care protocols making them more adequate to real cases. (More)

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Paper citation in several formats:
Fernández-Llatas, C.; Meneu, T.; Benedí, J. and Traver, V. (2011). CONTINUOUS CLINICAL PATHWAYS EVALUATION BY USING AUTOMATIC LEARNING ALGORITHMS. In Proceedings of the International Conference on Health Informatics (BIOSTEC 2011) - HEALTHINF; ISBN 978-989-8425-34-8; ISSN 2184-4305, SciTePress, pages 228-234. DOI: 10.5220/0003153902280234

@conference{healthinf11,
author={Carlos Fernández{-}Llatas. and Teresa Meneu. and Jose Miguel Benedí. and Vicente Traver.},
title={CONTINUOUS CLINICAL PATHWAYS EVALUATION BY USING AUTOMATIC LEARNING ALGORITHMS},
booktitle={Proceedings of the International Conference on Health Informatics (BIOSTEC 2011) - HEALTHINF},
year={2011},
pages={228-234},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0003153902280234},
isbn={978-989-8425-34-8},
issn={2184-4305},
}

TY - CONF

JO - Proceedings of the International Conference on Health Informatics (BIOSTEC 2011) - HEALTHINF
TI - CONTINUOUS CLINICAL PATHWAYS EVALUATION BY USING AUTOMATIC LEARNING ALGORITHMS
SN - 978-989-8425-34-8
IS - 2184-4305
AU - Fernández-Llatas, C.
AU - Meneu, T.
AU - Benedí, J.
AU - Traver, V.
PY - 2011
SP - 228
EP - 234
DO - 10.5220/0003153902280234
PB - SciTePress