AURORA, a multi-sensor dataset for robotic ocean exploration

Author:

Bernardi Marco1,Hosking Brett2,Petrioli Chiara1,Bett Brian J2,Jones Daniel2,Huvenne Veerle AI2ORCID,Marlow Rachel2,Furlong Maaten2,McPhail Steve2,Munafò Andrea2ORCID

Affiliation:

1. Sapienza University of Rome, Roma, Italy

2. National Oceanography Centre, Southampton, UK

Abstract

The current maturity of autonomous underwater vehicles (AUVs) has made their deployment practical and cost-effective, such that many scientific, industrial and military applications now include AUV operations. However, the logistical difficulties and high costs of operating at sea are still critical limiting factors in further technology development, the benchmarking of new techniques and the reproducibility of research results. To overcome this problem, this paper presents a freely available dataset suitable to test control, navigation, sensor processing algorithms and others tasks. This dataset combines AUV navigation data, sidescan sonar, multibeam echosounder data and seafloor camera image data, and associated sensor acquisition metadata to provide a detailed characterisation of surveys carried out by the National Oceanography Centre (NOC) in the Greater Haig Fras Marine Conservation Zone (MCZ) of the U.K in 2015.

Funder

H2020 European Research Council

Department of Environment, Fisheries and Rural Affairs

Natural Environment Research Council

Publisher

SAGE Publications

Subject

Applied Mathematics,Artificial Intelligence,Electrical and Electronic Engineering,Mechanical Engineering,Modeling and Simulation,Software

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2. Benchmarking Classical and Learning-Based Multibeam Point Cloud Registration;2024 IEEE International Conference on Robotics and Automation (ICRA);2024-05-13

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