PVEs: Position-Velocity Encoders for Unsupervised Learning of Structured State Representations

May 27, 2017 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Rico Jonschkowski, Roland Hafner, Jonathan Scholz, Martin Riedmiller arXiv ID 1705.09805 Category cs.RO: Robotics Cross-listed cs.CV, cs.LG Citations 68 Venue arXiv.org Last Checked 5 months ago
Abstract
We propose position-velocity encoders (PVEs) which learn---without supervision---to encode images to positions and velocities of task-relevant objects. PVEs encode a single image into a low-dimensional position state and compute the velocity state from finite differences in position. In contrast to autoencoders, position-velocity encoders are not trained by image reconstruction, but by making the position-velocity representation consistent with priors about interacting with the physical world. We applied PVEs to several simulated control tasks from pixels and achieved promising preliminary results.
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