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Intelligent Control of Singularly-Perturbed Reduced Order Eigenvalue-Preserved Quantum Computing Systems via Artificial Neural Identification and Linear Matrix Inequality Transformation

机译:通过人工神经识别和线性矩阵不等式变换智能控制奇异摄动降阶特征值保留量子计算系统

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A new method of intelligent control for closed quantum computation time-independent systems is introduced. The introduced method uses recurrent supervised neural computing to identify certain parameters of the transformed system matrix [ A ~ ]. Linear matrix inequality (LMI) is then used to determine the permutation matrix [P] so that a complete system transformation {[ B ~ ], [ C ~ ], [ D ~ ]} is achieved. The transformed model is then reduced using singular perturbation and state feedback control is implemented to enhance system performance. In quantum computation and mechanics, a closed system is an isolated system that can’t exchange energy or matter with its environment and doesn’t interact with other quantum systems. In contrast to an open quantum system, a closed quantum system obeys the unitary evolution and thus is information lossless that implies state reversibility. The experimental simulations show that the new hierarchical control simplifies the model of the quantum computing system and thus uses a simpler controller that produces the desired performance enhancement and system response.
机译:介绍了一种封闭时间量子独立系统的智能控制新方法。引入的方法使用递归监督神经计算来识别变换后的系统矩阵[A〜]的某些参数。然后,线性矩阵不等式(LMI)用于确定置换矩阵[P],从而实现完整的系统变换{[B〜],[C〜],[D〜]}。然后,使用奇异摄动来简化变换后的模型,并执行状态反馈控制以增强系统性能。在量子计算和力学中,封闭系统是一个孤立的系统,不能与周围的环境交换能量或物质,并且不与其他量子系统进行交互。与开放量子系统相反,封闭量子系统服从单一演化,因此信息无损失,这意味着状态可逆。实验仿真表明,新的分层控制简化了量子计算系统的模型,因此使用了更简单的控制器,该控制器可产生所需的性能增强和系统响应。

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