AI-ML-Enabled Electromagnetic Homing Guidance System for Scientific Autonomous Underwater Vehicles

被引:0
|
作者
Vandavasi, Bala Naga Jyothi [1 ]
Arunachalam, Umapathy
Vittal, Doss Prakash [1 ]
Raju, Ramesh [1 ]
Narayanaswamy, Vedachalam
Arumugam, Vadivelan
Sethuraman, Ramesh [1 ]
Gidugu, Ananda Ramadass [1 ]
机构
[1] Natl Inst Ocean Technol, Minist Earth Sci, Chennai, India
关键词
AUV; artificial intelligence; homing; machine learning;
D O I
10.4031/MTSJ.57.1.2
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Subsea homing and docking systems are used for increasing the spatiotem-poral capabilities of autonomous underwater vehicles (AUVs) involved in long en-durance scientific, survey, and surveillance missions. They offer necessary guidance for the AUV, and maneuver into the dock, considering the vehicle atti-tude and the dynamic response capabilities. Short-range homing is critical for successful docking as carrying outgross course and heading corrections is diffi-cult when the AUV is closer to the dock. The article describes the development of an artificial intelligence (AI)-enabled short-range AUV electro-magnetic homing guidance system (EMHGS) based on differential magnetometry principle. System engineering is carried out with the aid of electromagnetic Finite Element Analysis software; supervised and unsupervised machine learning algorithms are implement-ed for determining the range and heading correction in real time. The proposed algorithms aid the reliable and accurate homing operation in an unknown dynamic environment, and the algorithm is very easily implementable and independent of AUV configuration and payloads. The EMHGS with an AI-enabled MagHomer AUV is demonstrated for autonomous intelligent homing over a range of 7 m.
引用
收藏
页码:7 / 15
页数:9
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