Mengye Ren
University of Toronto
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Publication
Featured researches published by Mengye Ren.
computer vision and pattern recognition | 2017
Mengye Ren; Richard S. Zemel
While convolutional neural networks have gained impressive success recently in solving structured prediction problems such as semantic segmentation, it remains a challenge to differentiate individual object instances in the scene. Instance segmentation is very important in a variety of applications, such as autonomous driving, image captioning, and visual question answering. Techniques that combine large graphical models with low-level vision have been proposed to address this problem, however, we propose an end-to-end recurrent neural network (RNN) architecture with an attention mechanism to model a human-like counting process, and produce detailed instance segmentations. The network is jointly trained to sequentially produce regions of interest as well as a dominant object segmentation within each region. The proposed model achieves competitive results on the CVPPP [27], KITTI [12], and Cityscapes [8] datasets.
neural information processing systems | 2015
Mengye Ren; Ryan Kiros; Richard S. Zemel
Archive | 2015
Mengye Ren; Ryan Kiros; Richard S. Zemel
arXiv: Learning | 2016
Mengye Ren; Richard S. Zemel
neural information processing systems | 2017
Aidan N. Gomez; Mengye Ren; Raquel Urtasun; Roger B. Grosse
international conference on learning representations | 2017
Mengye Ren; Renjie Liao; Raquel Urtasun; Fabian H. Sinz; Richard S. Zemel
international conference on machine learning | 2018
Mengye Ren; Wenyuan Zeng; Bin Yang; Raquel Urtasun
international conference on learning representations | 2018
Yuhuai Wu; Mengye Ren; Renjie Liao; Roger B. Grosse
international conference on learning representations | 2018
Mengye Ren; Sachin Ravi; Eleni Triantafillou; Jake Snell; Kevin Swersky; Josh Tenenbaum; Hugo Larochelle; Richard S. Zemel
computer vision and pattern recognition | 2018
Mengye Ren; Andrei Pokrovsky; Bin Yang; Raquel Urtasun