4.8 Article

Scale-Aware Siamese Object Tracking for Vision-Based UAM Approaching

期刊

IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS
卷 19, 期 9, 页码 9349-9360

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TII.2022.3228197

关键词

Onboard embedded processor; real-world flight test; scale-aware model-free Siamese network; UAM tracking benchmark; unmanned aerial manipulator (UAM); vision-based UAM approaching

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In many industrial applications, visual approaching the object is crucial to subsequent manipulating in unmanned aerial manipulator (UAM). The key to efficient vision-based UAM object tracking is still limited. To address this problem, a novel model-free scale-aware Siamese tracker (SiamSA) is proposed. Furthermore, two novel UAM tracking benchmarks are first recorded and comprehensive experiments validate the effectiveness of SiamSA. Real-world tests also confirm practicality for industrial UAM approaching tasks with high efficiency and robustness.
In many industrial applications of unmanned aerial manipulator (UAM), visual approaching the object is crucial to subsequent manipulating. In comparison with the widely-studied manipulating, the key to efficient vision-based UAM approaching, i.e., UAM object tracking, is still limited. Since traditional model-based UAM tracking is costly and cannot track arbitrary objects, an intuitive solution is to introduce state-of-the-art model-free Siamese trackers from the visual tracking field. Although Siamese tracking is most suitable for the onboard embedded processors, severe object scale variation in UAM tracking brings formidable challenges. To address these problems, this work proposes a novel model-free scale-aware Siamese tracker (SiamSA). Specifically, a scale attention network is proposed to emphasize scale awareness in feature processing. A scale-aware anchor proposal network is designed to achieve anchor proposing. Besides, two novel UAM tracking benchmarks are first recorded. Comprehensive experiments on benchmarks validate the effectiveness of SiamSA. Furthermore, real-world tests also confirm practicality for industrial UAM approaching tasks with high efficiency and robustness.

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