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Christian Wurll

5 accepted papers

2024

6-DoF Grasp Pose Evaluation and Optimization via Transfer Learning from NeRFs

ICRA 2024poster

We address the problem of robotic grasping of known and unknown objects using implicit behavior cloning. We train a grasp evaluation model from a small number of demonstrations that outputs higher values for grasp candidates that are more likely to succeed in grasping. This evaluation model serves a…

Cited by 3SourcecodeScholar
2024

A Comprehensive Modeling and Scheduling Approach for Allocating Distributed Multi-Robot Software to the Edge/Cloud

IROS 2024poster

Offloading software modules to the edge/cloud can enhance a robot’s capabilities by leveraging massive computing power. However, determining which software module should be offloaded and scheduled to which robot/edge/cloud node is a challenging task, particularly for robot fleets with diverse tasks.…

Cited by 0SourceScholar
2023

KubeROS: A Unified Platform for Automated and Scalable Deployment of ROS2-based Multi-Robot Applications

ICRA 2023poster

As advanced algorithms enable robots to handle more challenging tasks and operate more autonomously, the on-board computer cannot meet the increased demands regarding computing power and memory storage in an efficient way. Leveraging the massive computing power of the cloud and low-latency connectiv…

Cited by 15SourceScholar
2023

Reachability-Aware Collision Avoidance for Tractor-Trailer System with Non-Linear MPC and Control Barrier Function

IROS 2023poster

This paper proposes a reachability-aware model predictive control with a discrete control barrier function for backward obstacle avoidance for a tractor-trailer system. The framework incorporates the state-variant reachable set obtained through sampling-based reachability analysis and symbolic regre…

Cited by 4SourceScholar
2023

Train What You Know – Precise Pick-and-Place with Transporter Networks

ICRA 2023poster

Precise pick-and-place is essential in robotic applications. To this end, we define an exact training method and an iterative inference method that improve pick-and-place precision with Transporter Networks [1]. We conduct a large scale experiment on 8 simulated tasks. A systematic analysis shows, t…

Cited by 6SourcecodeScholar