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Adversarial training for adverse conditions: Robust metric localisation using appearance transfer

Abstract:
We present a method of improving visual place recognition and metric localisation under very strong appearance change. We learn an invertable generator that can transform the conditions of images, e.g. from day to night, summer to winter etc. This image transforming filter is explicitly designed to aid and abet feature-matching using a new loss based on SURF detector and dense descriptor maps. A network is trained to output synthetic images optimised for feature matching given only an input RGB image, and these generated images are used to localize the robot against a previously built map using traditional sparse matching approaches. We benchmark our results using multiple traversals of the Oxford RobotCar Dataset over a year-long period, using one traversal as a map and the other to localise. We show that this method significantly improves place recognition and localisation under changing and adverse conditions, while reducing the number of mapping runs needed to successfully achieve reliable localisation.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1109/ICRA.2018.8462894

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Engineering Science
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Engineering Science
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Engineering Science
Role:
Author
ORCID:
0000-0001-6562-8454


Publisher:
IEEE
Host title:
Proceedings - IEEE International Conference on Robotics and Automation
Pages:
1011-1018
Publication date:
2018-09-13
Acceptance date:
2018-01-10
Event title:
2018 IEEE International Conference on Robotics and Automation (ICRA 2018)
Event location:
Brisbane, Australia
Event website:
https://www.ieee-ras.org/component/rseventspro/event/570-icra-2018-ieee-international-conference-on-robotics-and-automation
Event start date:
2018-05-21
Event end date:
2018-05-26
DOI:
EISBN:
9781538630815
ISBN:
9781538630822


Language:
English
Keywords:
Pubs id:
992960
Local pid:
pubs:992960
Deposit date:
2021-03-04
ARK identifier:

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