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Segmentation of lung fields in digital chest radiographs by artificial neural networks

Conference Paper
Publication Date:
2008
abstract:
Lung field segmentation is a basic step for virtually any quantitative procedure. In this view, due to the imaging process and the complexity of the imaged district, an efficient use of prior anatomical knowledge is crucial. In this report we describe a new approach to lung field segmentation which is based on fuzzy boundary modeling and a neural network architecture including supervised multilayer networks and topology preserving maps. In this report we describe a new approach to lung field segmentation which is based on fuzzy boundary modeling and a neural network architecture including supervised multilayer networks and topology preserving maps.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
Image processing; chest radiography; Image processing software; Diagnostic X-Ray Radiology
List of contributors:
Ferdeghini, EZIO MARIA; Guerriero, Lorenzo; Coppini, Giuseppe; Paterni, Marco
Authors of the University:
PATERNI MARCO
Handle:
https://iris.cnr.it/handle/20.500.14243/145463
Book title:
Primo Congresso GNB (Pisa, 3-7 luglio 2008). Atti
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