CTIN: Robust Contextual Transformer Network for Inertial Navigation
Bingbing Rao, Ehsan Kazemi, Yifan Ding, Devu M. Shila, Frank M. Tucker, Liqiang Wang
摘要
Recently, data-driven inertial navigation approaches have demonstrated their capability of using well-trained neural networks to obtain accurate position estimates from inertial measurement units (IMUs) measurements. In this paper, we propose a novel robust Contextual Transformer-based network for Inertial Navigation (CTIN) to accurately predict velocity and trajectory. To this end, we first design a ResNet-based encoder enhanced by local and global multi-head self-attention to capture spatial contextual information from IMU measurements. Then we fuse these spatial representations with temporal knowledge by leveraging multi-head attention in the Transformer decoder. Finally, multi-task learning with uncertainty reduction is leveraged to improve learning efficiency and prediction accuracy of velocity and trajectory. Through extensive experiments over a wide range of inertial datasets (e.g., RIDI, OxIOD, RoNIN, IDOL, and our own), CTIN is very robust and outperforms state-of-the-art models.
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引用它的顶会 Paper3
- M2EIT: Multi-Domain Mixture of Experts for Robust Neural Inertial TrackingYan Li, Yang Xu, Changhao Chen, Zhongchen Shi 等ICCV 2025 · 被引用 3 次
- iMoT: Inertial Motion Transformer for Inertial NavigationSon Minh Nguyen, Duc Viet Le, Paul J. M. HavingaAAAI 2025 · 被引用 2 次
- Tartan IMU: A Light Foundation Model for Inertial Positioning in RoboticsShibo Zhao, Sifan Zhou, Raphael Blanchard, Yuheng Qiu 等CVPR 2025
它引用的顶会 Paper4
- Local Relation Networks for Image RecognitionHan Hu, Zheng Zhang, Zhenda Xie, Stephen LinICCV 2019 · 被引用 555 次
- IDOL: Inertial Deep Orientation-Estimation and LocalizationScott Sun, Dennis Melamed, Kris KitaniAAAI 2021 · 被引用 122 次
- Neural Networks Are More Productive Teachers Than Human Raters: Active Mixup for Data-Efficient Knowledge Distillation From a Blackbox ModelDongdong Wang, Yandong Li, Liqiang Wang, Boqing GongCVPR 2020
- Exploring Self-Attention for Image RecognitionHengshuang Zhao, Jiaya Jia, Vladlen KoltunCVPR 2020
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