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  4. Social Scene Understanding: End-to-End Multi-Person Action Localization and Collective Activity Recognition
 
conference paper

Social Scene Understanding: End-to-End Multi-Person Action Localization and Collective Activity Recognition

Bagautdinov, Timur  
•
Alahi, Alexandre  
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Fleuret, François  
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2017
30Th Ieee Conference On Computer Vision And Pattern Recognition (Cvpr 2017)
IEEE Conference on Computer Vision and Pattern Recognition (CVPR)

We present a unified framework for understanding human social behaviors in raw image sequences. Our model jointly detects multiple individuals, infers their social actions, and estimates the collective actions with a single feed-forward pass through a neural network. We propose a single architecture that does not rely on external detection algorithms but rather is trained end-to-end to generate dense proposal maps that are refined via a novel inference scheme. The temporal consistency is handled via a person-level matching Recurrent Neural Network. The complete model takes as input a sequence of frames and outputs detections along with the estimates of individual actions and collective activities. We demonstrate state-of-the-art performance of our algorithm on multiple publicly available benchmarks.

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