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Obstacle-Avoidant Leader Following with a Quadruped Robot
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Personal mobile robotic assistants are expected to find wide applications in industry and healthcare. For example, people with limited mobility can benefit from robots helping with daily tasks, or construction workers can have robots perform precision monitoring tasks on-site. However, manually steering a robot while in motion requires significant concentration from the operator, especially in tight or crowded spaces. This reduces walking speed, and the constant need for vigilance increases fatigue and, thus, the risk of accidents. This work presents a virtual leash with which a robot can naturally follow an operator. We use a sensor fusion based on a custom-built RF transponder, RGB cameras, and a LiDAR. In addition, we customize a local avoidance planner for legged platforms, which enables us to navigate dynamic and narrow environments. We successfully validate on the ANYmal platform the robustness and performance of our entire pipeline in real-world experiments.
Forward citations
Cited by 2 Pith papers
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Follow Everything: A Leader-Following and Obstacle Avoidance Framework with Goal-Aware Adaptation
A leader-following system stores leader appearance features by distance and switches between chasing, following, planning, and retreating states, which improved simulated follow success from below 22% to 96.9%.
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Direction Finding for Software Defined Radios with Switched Uniform Circular Arrays
A two-channel SDR with a switched 8+1 uniform circular array and pseudo-coherent MUSIC achieves a mean absolute direction-of-arrival error of 4.7 degrees in controlled tests.
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