In this paper we investigate the introduction of Reservoir Computing (RC) neural network models in the context of AAL (Ambient Assisted Living) and self-learning robot ecologies, with a focus on the computational constraints related to the implementation over a network of sensors. Specifically, we experimentally study the relationship between architectural parameters influencing the computational cost of the models and the performance on a task of user movements prediction from sensors signal streams. The RC shows favorable scaling properties results for the analyzed AAL task.

An experimental evaluation of reservoir computation for ambient assisted living

Barsocchi P
2013

Abstract

In this paper we investigate the introduction of Reservoir Computing (RC) neural network models in the context of AAL (Ambient Assisted Living) and self-learning robot ecologies, with a focus on the computational constraints related to the implementation over a network of sensors. Specifically, we experimentally study the relationship between architectural parameters influencing the computational cost of the models and the performance on a task of user movements prediction from sensors signal streams. The RC shows favorable scaling properties results for the analyzed AAL task.
2013
Istituto di Scienza e Tecnologie dell'Informazione "Alessandro Faedo" - ISTI
Inglese
Bruno Apolloni, Simone Bassis, Anna Esposito, Francesco Carlo Morabito
Neural Nets and Surroundings
41
50
978-3-642-35466-3
http://link.springer.com/chapter/10.1007%2F978-3-642-35467-0_5
Springer
Heidelberg
GERMANIA
Sì, ma tipo non specificato
Ambient Assisted Living
Localization; Network Protocols
grant agreement 269914
1
02 Contributo in Volume::02.01 Contributo in volume (Capitolo o Saggio)
268
restricted
Bacciu D.; Chessa S.; Gallicchio C.; Micheli A.; Barsocchi P.
info:eu-repo/semantics/bookPart
   Robotics UBIquitous COgnitive Network
   RUBICON
   FP7
   269914
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/246816
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