Compositional Video Prediction
August 22, 2019 ยท Entered Twilight ยท ๐ IEEE International Conference on Computer Vision
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Repo contents: .gitignore, PerceptualSimilarity, README.md, _init_path.py, cfgs, cvp, data, demo.py, docs, examples, test.py, train.py, utils
Authors
Yufei Ye, Maneesh Singh, Abhinav Gupta, Shubham Tulsiani
arXiv ID
1908.08522
Category
cs.CV: Computer Vision
Citations
84
Venue
IEEE International Conference on Computer Vision
Repository
https://github.com/judyye/CVP
โญ 62
Last Checked
8 days ago
Abstract
We present an approach for pixel-level future prediction given an input image of a scene. We observe that a scene is comprised of distinct entities that undergo motion and present an approach that operationalizes this insight. We implicitly predict future states of independent entities while reasoning about their interactions, and compose future video frames using these predicted states. We overcome the inherent multi-modality of the task using a global trajectory-level latent random variable, and show that this allows us to sample diverse and plausible futures. We empirically validate our approach against alternate representations and ways of incorporating multi-modality. We examine two datasets, one comprising of stacked objects that may fall, and the other containing videos of humans performing activities in a gym, and show that our approach allows realistic stochastic video prediction across these diverse settings. See https://judyye.github.io/CVP/ for video predictions.
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