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Multiple model-based control of robotic manipulators: theory and simulation

M.B. Leahy, L.D. Tellman

发表年份
2003
引用次数
12

摘要

The multiple-model-based control (MMBC) technique utilizes knowledge of nominal plant dynamics and principles of Bayesian estimation to provide parameter-independent trajectory tracking accuracy. The MMBC algorithm is formed by augmenting a model-based controller with a closed-loop form of multiple-model adaptive estimation ( Delta MMAE). The Delta MMAE uses perturbation models of the combined plant and feedback control system, along with measurements of tracking error, to provide an estimate of the plant parameters. When MMBC is applied to the robotic manipulator control problem the Delta MMAE provides a payload estimate. The model-based controller combines the a priori knowledge of robot structure with the payload estimate to produce the multiple models of the manipulator dynamics required to maintain controller accuracy. MMBC provides a unique solution to the problem of maintaining trajectory tracking accuracy in uncertain payload environments.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">&gt;</ETX>

关键词

Payload (computing)A priori and a posterioriControl theory (sociology)Computer scienceController (irrigation)TrajectoryControl engineeringRobot manipulatorRobotInverse dynamics

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