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Julien Mille

3 accepted papers

2020

CoPhy: Counterfactual Learning of Physical Dynamics

ICLR 2020spotlight

Understanding causes and effects in mechanical systems is an essential component of reasoning in the physical world. This work poses a new problem of counterfactual learning of object mechanics from visual input. We develop the CoPhy benchmark to assess the capacity of the state-of-the-art models f…

Cited by 113SourceScholar
2018

Glimpse Clouds: Human Activity Recognition From Unstructured Feature Points

CVPR 2018poster

We propose a method for human activity recognition from RGB data that does not rely on any pose information during test time, and does not explicitly calculate pose information internally. Instead, a visual attention module learns to predict glimpse sequences in each frame. These glimpses correspond…

2018

Object Level Visual Reasoning in Videos

ECCV 2018poster

Human activity recognition is typically addressed by training models to detect key concepts like global and local motion, features related to object classes present in the scene, as well as features related to the global context. The next open challenges in activity recognition require a level of un…