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Dynamic Throwing with Robotic Material Handling Machines

Lennart Werner, Nan Fang, Pol Eyschen, Filippo Spinelli, Hongyi Yang, Marco Hutter

发表年份
2024
引用次数
6

摘要

Automation of hydraulic material handling machinery is currently limited to semi-static pick-and-place cycles. Dynamic throwing motions which utilize the passive joints, can greatly improve time efficiency as well as increase the dumping workspace. In this work, we use Reinforcement Learning (RL) to design dynamic controllers for material handlers with under-actuated arms as commonly used in logistics. The controllers are tested both in simulation and in real-world experiments on a 12-ton test platform. The method is able to exploit the passive joints of the gripper to perform dynamic throwing motions. With the proposed controllers, the machine is able to throw individual objects to targets outside the static reachability zone with good accuracy for its practical applications. The work demonstrates the possibility of using RL to perform highly dynamic tasks with heavy machinery, suggesting a potential for improving the efficiency and precision of autonomous material handling tasks.

关键词

ThrowingComputer scienceRobotRobotic armHuman–computer interactionEngineering drawingArtificial intelligenceEngineeringMechanical engineering

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