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Adaptive locomotion control system for robots with arbitrarily modular design

Alexander Demin

发表年份
2020
引用次数
2

摘要

The paper proposes an adaptive control system for modular hyper-redundant systems that can learn to solve the control problem of robots with arbitrary designs from a given class. The proposed model uses logical-probabilistic knowledge discovery methods to find effective control patterns in an array of system’s environment interaction statistical data. For making the system independent on the chosen robot design, it was proposed to include design information in the training data. Using this information during the training process allows the control system to tune in to control the robot, regardless of its design. The effectiveness of the approach is demonstrated by the example of training virtual models of robots to move forward.

关键词

Computer scienceModular designRobotProbabilistic logicProcess (computing)Control (management)Control systemClass (philosophy)Artificial intelligenceRobot control

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