Zaffar, Mubariz and Khaliq, Ahmad and Ehsan, Shoaib and Milford, Michael and Alexis, Kostas and McDonald-Maier, Klaus (2019) Are State-of-the-art Visual Place Recognition Techniques any Good for Aerial Robotics? Working Paper. arXiv. (Unpublished)
Zaffar, Mubariz and Khaliq, Ahmad and Ehsan, Shoaib and Milford, Michael and Alexis, Kostas and McDonald-Maier, Klaus (2019) Are State-of-the-art Visual Place Recognition Techniques any Good for Aerial Robotics? Working Paper. arXiv. (Unpublished)
Zaffar, Mubariz and Khaliq, Ahmad and Ehsan, Shoaib and Milford, Michael and Alexis, Kostas and McDonald-Maier, Klaus (2019) Are State-of-the-art Visual Place Recognition Techniques any Good for Aerial Robotics? Working Paper. arXiv. (Unpublished)
Abstract
Visual Place Recognition (VPR) has seen significant advances at the frontiers of matching performance and computational superiority over the past few years. However, these evaluations are performed for ground-based mobile platforms and cannot be generalized to aerial platforms. The degree of viewpoint variation experienced by aerial robots is complex, with their processing power and on-board memory limited by payload size and battery ratings. Therefore, in this paper, we collect $8$ state-of-the-art VPR techniques that have been previously evaluated for ground-based platforms and compare them on $2$ recently proposed aerial place recognition datasets with three prime focuses: a) Matching performance b) Processing power consumption c) Projected memory requirements. This gives a birds-eye view of the applicability of contemporary VPR research to aerial robotics and lays down the the nature of challenges for aerial-VPR.
Item Type: | Monograph (Working Paper) |
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Additional Information: | IEEE ICRA 2019 Workshop on Aerial Robotics 8 pages, 7 figures |
Uncontrolled Keywords: | cs.CV |
Divisions: | Faculty of Science and Health Faculty of Science and Health > Computer Science and Electronic Engineering, School of |
SWORD Depositor: | Unnamed user with email elements@essex.ac.uk |
Depositing User: | Unnamed user with email elements@essex.ac.uk |
Date Deposited: | 15 May 2020 12:48 |
Last Modified: | 16 May 2024 19:47 |
URI: | http://repository.essex.ac.uk/id/eprint/27548 |
Available files
Filename: 1904.07967v2.pdf