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Neural networks as soft sensors: a comparison in a real world application

Academic Article
Publication Date:
2006
abstract:
Physical atmosphere parameters, as temperature or humidity, can be indirectly estimated on the surface of a monument by means of soft sensors based on neural networks, if an Ambient Air Monitoring Station works in the neighborhood of the monument itself. Since the soft sensors work as virtual instruments, the accuracy of such measurements has to be analyzed and validated from statistical and metrological points of view. The paper compares different typologies of neural networks, which can be used as soft sensors in a complex real world application: a non invasive monitoring of the conservation state of old monuments.
Iris type:
01.01 Articolo in rivista
Keywords:
Soft Sensor; Neural Neworks
List of contributors:
Ciarlini, Patrizia; Maniscalco, Umberto
Authors of the University:
MANISCALCO UMBERTO
Handle:
https://iris.cnr.it/handle/20.500.14243/301863
Published in:
IEEE ... INTERNATIONAL CONFERENCE ON NEURAL NETWORKS
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