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Dive into the research topics where Yongmin Li is active.

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Featured researches published by Yongmin Li.


Automatica | 2015

Stabilization of neutral time-delay systems with actuator saturation via auxiliary time-delay feedback

Yonggang Chen; Shumin Fei; Yongmin Li

This paper investigates the stabilization problem for neutral time-delay systems with actuator saturation. Different from the existing techniques, the auxiliary time-delay feedback is introduced for the first time in this paper. Based on such a technique, the saturation nonlinearity is represented as the convex combination of state feedback and auxiliary time-delay feedback. By employing free-weighting matrix technique and Jensen integral inequalities, and performing the accurate estimation of the lower bounds of L-K functionals, the improved delay-dependent local stabilization conditions are proposed in terms of linear matrix inequalities (LMIs). Numerical examples illustrate the reduced conservatism of the proposed conditions in this paper.


IEEE Transactions on Automatic Control | 2017

Robust Stabilization for Uncertain Saturated Time-Delay Systems: A Distributed-Delay-Dependent Polytopic Approach

Yonggang Chen; Shumin Fei; Yongmin Li

This technical note investigates the robust stabilization problem for uncertain linear systems with discrete and distributed delays under saturated state feedback. Different from the existing approaches, a distributed-delay-dependent polytopic approach is proposed in this technical note, and the saturation nonlinearity is represented as the convex combination of state feedback and auxiliary distributed-delay feedback. Then, by incorporating an appropriate augmented Lyapunov-Krasovskii (L-K) functional and some integral inequalities, the less conservative stabilization and robust stabilization conditions are proposed in terms of linear matrix inequalities (LMIs). The effectiveness and reduced conservatism of the proposed conditions are illustrated by numerical examples.


Circuits Systems and Signal Processing | 2012

Decentralized \mathcal{L}_{2}–\mathcal{L}_{\infty} Filtering for Interconnected Markovian Jump Systems with Delays

Yongmin Li; Shumin Fei; Baoyong Zhang; Yuming Chu

This paper deals with the problem of decentralized


chinese control and decision conference | 2011

Stability and L 2 –L ∞ analysis for a class of interconnected systems

Yongmin Li; Shumin Fei; Yuming Chu; Zhenjiang Zhao

\mathcal{L}_{2}


international conference on control, automation, robotics and vision | 2012

Decentralized H ∞ filtering for interconnected Markovian jump systems with delays

Yongmin Li; Jianwei Xia; Yonggang Chen


chinese control and decision conference | 2011

New delay segment-dependent asymptotic stability for stochastic neural networks with interval time-varying delay and distributed delays

Jianwei Xia; Xianping Chen; Yonggang Chen; Yongmin Li

\mathcal{L}_{\infty}


Iet Control Theory and Applications | 2014

New mixed-delay-dependent robust stability conditions for uncertain linear neutral systems

Yonggang Chen; Shumin Fei; Zhou Gu; Yongmin Li

filtering for a class of interconnected (or large-scale) Markovian jump systems with constant time delays. The purpose is to present delay-dependent conditions for the existence of mode-dependent decentralized filters, which guarantees that the filtering error system is stochastically stable with a prescribed


Nonlinear Dynamics | 2014

Improved delay-dependent stability conditions for recurrent neural networks with multiple time-varying delays

Yonggang Chen; Shumin Fei; Yongmin Li

\mathcal{L}_{2}


Iet Control Theory and Applications | 2017

Anti-windup design for time-delay systems via generalised delay-dependent sector conditions

Yonggang Chen; Yongmin Li; Shumin Fei


chinese control conference | 2012

Further study on robust H ∞ control for uncertain fuzzy neutral systems with distributed delays

Yongmin Li; Jianwei Xia; Yonggang Chen; Leping Bao

\mathcal{L}_{\infty}

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Baoyong Zhang

Nanjing University of Science and Technology

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Zhou Gu

Nanjing Forestry University

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