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Nicolas Bach

3 accepted papers

2025

A Large-Scale Dataset for Humanoid Robotics Enabling a Novel Data-Driven Fall Prediction

ICRA 2025

In this paper, we present a comprehensive dataset comprising 37.9 hours of sensor data collected from humanoid robots, including 18.3 hours of walking and 2,519 recorded falls. This extensive dataset is a valuable resource for various robotics and machine learning applications. Leveraging this data,

Cited by 1SourceScholar
2024

MuRoSim – A Fast and Efficient Multi-Robot Simulation for Learning-based Navigation

ICRA 2024poster

Multi-robot navigation and dynamic obstacle avoidance are challenging problems in robot learning. Recent advancements in Deep Reinforcement Learning (DRL) have demonstrated great potential in this area. Nonetheless, they often face challenges related to low sample efficiency. To overcome this challe…

Cited by 0SourceScholar
2023

evoBOT – Design and Learning-Based Control of a Two-Wheeled Compound Inverted Pendulum Robot

IROS 2023poster

This paper introduces evoBOT, a novel robot platform for research on highly dynamic locomotion and human-machine interaction. evoBOT is capable of performing complex tasks such as handovers or manipulation while moving at high speeds. We provide an overview of the robot's core features and the under…

Cited by 5SourceScholar