FIRE-LIVWO: Robust LiDAR-Inertial-Visual-Wheel Odometry via Failure-Immune mmWave Radar Enhancement

📅 2026-09-04
📈 Citations: 0
Influential: 0
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🤖 AI Summary
为解决地下煤矿复杂环境中SLAM鲁棒性问题,提出FIRE-LIVWO方法,融合4D毫米波雷达、激光雷达和视觉信息,通过迭代误差状态卡尔曼滤波器提高定位精度和鲁棒性。
📝 Abstract
Achieving robust SLAM in large-scale underground coal mines with complex structures and severe degeneracies remains highly challenging. Dense smoke and dust cause substantial loss of visual information and degrade LiDAR point-cloud features, while long, self-similar corridors induce geometric degeneration, leading to pronounced odometry drift. To address these issues, we propose FIRE-LIVWO: Failure-Immune mmWave Radar-Enhanced LiDAR-Inertial-Visual-Wheel Odometry, a tightly coupled multi-modal odometry framework based on an iterated error-state Kalman filter (IESKF). The framework fuses 4D mmWave radar, LiDAR, and visual features within a unified VoxelMap and jointly constructs LiDAR-radar point-to-plane residuals and sparse visual photometric residuals. In smoke-filled environments, we exploit the strong penetration of 4D mmWave radar and introduce pointwise Doppler velocity constraints to preserve state observability. In geometrically degenerate corridors, we tightly couple wheel odometry using non-holonomic constraints (NHC) and online lever-arm compensation to reduce drift. Our central contribution is a degeneration detection and adaptive fusion model switching strategy grounded in geometric and visual observability analysis, which quantifies observability online and dynamically adjusts modality weights. Real-world experiments in underground coal mines demonstrate that FIRE-LIVWO accurately identifies failure boundaries, enabling reliable modality switching under extreme conditions. Compared with baselines, it achieves superior accuracy and robustness (average localization error of 5.677m). We open source our code on Github to benefit the robotics community.
Problem

Research questions and friction points this paper is trying to address.

SLAM
underground coal mines
geometric degeneration
odometry drift
visual information loss
Innovation

Methods, ideas, or system contributions that make the work stand out.

Failure-Immune
mmWave Radar-Enhanced
Degeneration Detection
Adaptive Fusion
Observability Analysis
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Kun Hu
School of Mechatronic Engineering, China University of Mining and Technology
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