论文标题
线性量子系统的耐故障相干H------
Fault-tolerant Coherent H-infinity Control for Linear Quantum Systems
论文作者
论文摘要
鲁棒性和可靠性是开发实用量子控制系统的两个关键要求。本文的目的是设计一个连贯的反馈控制器,以针对具有马尔可夫跳跃故障的一类线性量子系统,以便闭环量子系统既具有容错又具有H------------降低性衰减性能。本文首先将物理实现条件从时间不变的情况扩展到线性随机量子系统的时变情况。通过将耐受性H-赋值控制问题与耗散属性和Riccati微分方程的溶液相关联,通过求解一组线性矩阵不等式(LMIS)来设计用于量子系统的H-核控制器。特别是,采用算法来引入其他噪声并构造相应的输入矩阵,以确保量子控制器的物理可靠性。对于开发的耐故障控制策略的实际应用,我们提出了一个线性量子系统示例,其中量子光学器件中的泵浦场的幅度随机在不同值之间随机跳跃。证明可以使用一些基本的光学组件来设计和实现量子H-含量控制器,以实现所需的控制目标。
Robustness and reliability are two key requirements for developing practical quantum control systems. The purpose of this paper is to design a coherent feedback controller for a class of linear quantum systems suffering from Markovian jumping faults so that the closed-loop quantum system has both fault tolerance and H-infinity disturbance attenuation performance. This paper first extends the physical realization conditions from the time-invariant case to the time-varying case for linear stochastic quantum systems. By relating the fault tolerant H-infinity control problem to the dissipation properties and the solutions of Riccati differential equations, an H-infinity controller for the quantum system is then designed by solving a set of linear matrix inequalities (LMIs). In particular, an algorithm is employed to introduce additional noises and to construct the corresponding input matrices to ensure the physical realizability of the quantum controller. For real applications of the developed fault-tolerant control strategy, we present a linear quantum system example from quantum optics, where the amplitude of the pumping field randomly jumps among different values. It is demonstrated that a quantum H-infinity controller can be designed and implemented using some basic optical components to achieve the desired control goal.