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Classification of indoor actions through deep neural networks

Conference Paper
Publication Date:
2016
abstract:
The raising number of elderly people urges the research of systems able to monitor and support people inside their domestic environment. An automatic system capturing data about the position of a person in the house, through accelerometers and RGBd cameras can monitor the person activities and produce outputs associating the movements to a given tasks or predicting the set of activities that will be executes. We considered, for the task the classification of the activities a Deep Convolutional Neural Network. We compared two different deep network and analyzed their outputs.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
ambient intelligence; neural networks; actions classification
List of contributors:
Maniscalco, Umberto; Vella, Filippo; Augello, Agnese
Authors of the University:
AUGELLO AGNESE
MANISCALCO UMBERTO
VELLA FILIPPO
Handle:
https://iris.cnr.it/handle/20.500.14243/324576
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