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20242026
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cs.RO2026

Motion Planning in Compressed Representation Spaces

Lukas Lao Beyer, Sertac Karaman

Deep learning methods have vastly expanded the capabilities of motion planning in robotics applications, as learning priors from large-scale data has been shown to be essential in…

cs.RO2026

SCREP: Scene Coordinate Regression and Evidential Learning-based Perception-Aware Trajectory Generation

Juyeop Han, Lukas Lao Beyer, Guilherme V. Cavalheiro +1

Autonomous flight in GPS-denied indoor spaces requires trajectories that keep visual-localization error tightly bounded across varied missions. Map-based visual localization method…

cs.RO2025

Real-Time Sampling-based Online Planning for Drone Interception

Gilhyun Ryou, Lukas Lao Beyer, Sertac Karaman

This paper studies high-speed online planning in dynamic environments. The problem requires finding time-optimal trajectories that conform to system dynamics, meeting computational…

cs.RO2024

Joint Localization and Planning using Diffusion

L. Lao Beyer, S. Karaman

Diffusion models have been successfully applied to robotics problems such as manipulation and vehicle path planning. In this work, we explore their application to end-to-end naviga…

cs.RO2024

NVINS: Robust Visual Inertial Navigation Fused with NeRF-augmented Camera Pose Regressor and Uncertainty Quantification

Juyeop Han, Lukas Lao Beyer, Guilherme V. Cavalheiro +1

In recent years, Neural Radiance Fields (NeRF) have emerged as a powerful tool for 3D reconstruction and novel view synthesis. However, the computational cost of NeRF rendering and…