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Séminaire du GERAD : Principled multi-person pose estimation using implicit column generation and nested benders decomposition

Séminaire du GERAD : Principled multi-person pose estimation using implicit column generation and nested benders decomposition

Principled multi-person pose estimation using implicit column generation and nested benders decomposition

Julian Yarkony
– Experian DataLabs, États-Unis

We present a novel approach for multi-person pose estimation (MPPE) using implicit column generation and nested benders decomposition. We formulate MPPE as a set packing problem over the set of person hypothesis (poses) in an image where the set of poses is the power set of detections of body parts in the image. We model the quality of a pose as a function of its members as described by a tree structured deformable part model.

Since we cannot enumerate the set of poses we attack inference using implicit column generation where the pricing problem is structured as a dynamic program and dual optimal inequalities are easily computed. We exploit structure in the dynamic program to permit efficient inference using nested Benders decomposition. We demonstrate the effectiveness of our approach on the MPII human pose annotation benchmark data set.

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Entrée gratuite.

Bienvenue à tous!

 

Date

Lundi 22 octobre 2018
Débute à 15h30

Prix

gratuit

Contact

Lieu

Université de Montréal - Pavillon André-Aisenstadt
2920, chemin de la Tour
Montréal
QC
Canada
H3T 1N8
514 343-6111
4488

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