CaloriNet: From silhouettes to calorie estimation in private environments
June 21, 2018 Β· Declared Dead Β· π British Machine Vision Conference
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Authors
Alessandro Masullo, Tilo Burghardt, Dima Damen, Sion Hannuna, Victor Ponce-LΓ³pez, Majid Mirmehdi
arXiv ID
1806.08152
Category
cs.CV: Computer Vision
Citations
12
Venue
British Machine Vision Conference
Last Checked
4 months ago
Abstract
We propose a novel deep fusion architecture, CaloriNet, for the online estimation of energy expenditure for free living monitoring in private environments, where RGB data is discarded and replaced by silhouettes. Our fused convolutional neural network architecture is trainable end-to-end, to estimate calorie expenditure, using temporal foreground silhouettes alongside accelerometer data. The network is trained and cross-validated on a publicly available dataset, SPHERE_RGBD + Inertial_calorie. Results show state-of-the-art minimum error on the estimation of energy expenditure (calories per minute), outperforming alternative, standard and single-modal techniques.
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