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Egocentric Conformal Prediction for Safe and Efficient Navigation in Dynamic Cluttered Environments

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Conformal prediction (CP) has emerged as a powerful tool in robotics and control, thanks to its ability to calibrate complex, data-driven models with formal guarantees. However, in robot navigation tasks, existing CP-based methods often decouple prediction from control, evaluating models without considering whether prediction errors actually compromise safety. Consequently, ego-vehicles may become overly conservative or even immobilized when all potential trajectories appear infeasible. To address this issue, we propose a novel CP-based navigation framework that responds exclusively to safety-critical prediction errors. Our approach introduces egocentric score functions that quantify how much closer obstacles are to a candidate vehicle position than anticipated. These score functions are then integrated into a model predictive control scheme, wherein each candidate state is individually evaluated for safety. Combined with an adaptive CP mechanism, our framework dynamically adjusts to changes in obstacle motion without resorting to unnecessary conservatism. Theoretical analyses indicate that our method outperforms existing CP-based approaches in terms of cost-efficiency while maintaining the desired safety levels, as further validated through experiments on real-world datasets featuring densely populated pedestrian environments.

Jaeuk Shin, Jungjin Lee, Insoon Yang• 2025

Related benchmarks

TaskDatasetResultRank
Robot navigationETH-UCY (offline)
Navigation Time (NT)0.0409
16
2D NavigationETH-UCY Hotel
Collision Rate2
5
2D NavigationETH-UCY ZARA1
Collision Rate9.4
5
2D NavigationETH-UCY ZARA2
Collision Rate0.176
5
3D quadrotor navigation3D quadrotor navigation 280 dynamic obstacles 17 seeds (alpha = 0.1) (test)
Collision Rate3.6
5
2D NavigationETH-UCY Univ
Collision Rate29.2
5
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