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Computational complexity analysis of a 3D neural network approach to volume matching

Academic Article
Publication Date:
2002
abstract:
Automatic registration of digital images is an important support in the medical field for physicians and surgeons. In fact, comparison of anatomical scan is a fundamental procedure for disease prediction, lesions quantification or for evaluating the results of a therapy. A new proposed approach implements three-dimensional neural networks to match, and hence to register, volumetric data sets of the brain in order to evaluate the differences between two volumes. The high computational complexity of this approach has been improved by implementing a more efficient method to train the networks.
Iris type:
01.01 Articolo in rivista
Keywords:
Image processing algorithm
List of contributors:
DI BONA, Sergio; Salvetti, Ovidio
Handle:
https://iris.cnr.it/handle/20.500.14243/48909
Published in:
PATTERN RECOGNITION
Journal
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