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Higher-order sliding modes, differentiation and output-feedback control

机译:高阶滑模,微分和输出反馈控制

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Being a motion on a discontinuity set of a dynamic system, sliding mode is used to keep accurately a given constraint and features theoretically-infinite-frequency switching. Standard sliding modes provide for finite-time convergence, precise keeping of the constraint and robustness with respect to internal and external disturbances. Yet the relative degree of the constraint has to be I and a dangerous chattering effect is possible. Higher-order sliding modes preserve or generalize the main properties of the standard sliding mode and remove the above restrictions. r-Sliding mode realization provides for up to the rth order of sliding precision with respect to the sampling interval compared with the first order of the standard sliding mode. Such controllers require higher-order real-time derivatives of the outputs to be available. The lacking information is achieved by means of proposed arbitrary-order robust exact differentiators with finite-time convergence. These differentiators feature optimal asymptotics with respect to input noises and can be used for numerical differentiation as well. The resulting controllers provide for the full output-feedback real-time control of any output variable of an uncertain dynamic system, if its relative degree is known and constant. The theoretical results are confirmed by computer simulation. [References: 38]
机译:作为动态系统的不连续集上的运动,滑模用于精确地保持给定约束,并具有理论上无限频率的切换功能。标准的滑动模式提供了有限的时间收敛,相对于内部和外部干扰的约束的精确保持和鲁棒性。但是约束的相对程度必须为I,并且可能会产生危险的震颤效果。高阶滑模保留或概括了标准滑模的主要属性,并消除了上述限制。与标准滑模的一阶相比,r-滑模的实现相对于采样间隔可提供高达r阶的滑移精度。这样的控制器要求输出的高阶实时导数可用。通过提出的具有有限时间收敛性的任意阶鲁棒精确微分器可以解决信息不足的问题。这些微分器具有关于输入噪声的最佳渐近性,也可以用于数值微分。如果不确定的动态系统的相对变量是已知的且恒定的,则所得的控制器将提供对不确定动态系统的任何输出变量的完整输出反馈实时控制。理论结果通过计算机仿真得到了证实。 [参考:38]

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