X-IONet: Cross-Platform Inertial Odometry Network with Dual-Stage Attention

arXiv — cs.LGWednesday, November 12, 2025 at 5:00:00 AM
The introduction of X-IONet marks a significant advancement in the field of robotic navigation, particularly for quadruped robots that face unique challenges due to their dynamic motion patterns. Traditional inertial odometry methods have struggled to adapt from pedestrian to quadruped applications, often resulting in performance degradation. X-IONet addresses this by utilizing a single Inertial Measurement Unit (IMU) and incorporating a dual-stage attention architecture that effectively models long-range temporal dependencies and inter-axis correlations. This innovative framework not only classifies motion platforms through a rule-based expert selection module but also outputs displacement predictions with associated uncertainties, which are refined using an Extended Kalman Filter for robust state estimation. Extensive experiments have demonstrated that X-IONet achieves state-of-the-art performance, reducing Absolute Trajectory Error by 52.8% and Relative Trajectory Error by 41.3% on …
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