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Disease evolution prognosis based on multi-source signals and image analysis

Conference Paper
Publication Date:
2005
abstract:
A methodology to approach the automatic monitoring and prognosis of diseases evolution is proposed. We define a multilevel system architecture capable to process multi-source biomedical data according to a coarse-to-fine paradigm. An application regarding neuro-signals and image categorization is also considered as a case study. The proposed methodology even preliminary has shown to be a possible approach to prognosis activity, mainly if suitably integrated into a hybrid system for medical decision support.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
I.5.2 Design Methodology; I.5.1 Models; I.4.8 Scene Analysis; H.3.3 Information Search and Retrieval; C.3 Special-Purpose and Application-Based Systems
List of contributors:
DI BONO, MARIA GRAZIA; Colantonio, Sara; Salvetti, Ovidio
Authors of the University:
COLANTONIO SARA
Handle:
https://iris.cnr.it/handle/20.500.14243/61355
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