通过控制Lyapunov函数与无干扰输入的神经网络的同步
Yuting Cao1, Linhao Zhao2, Shiping Wen2
1Faculty of Computer Science and Control Engineering, Shenzhen University of Advanced Technology, Shenzhen, 518055, Guang dong, China.
概括
本研究介绍了神经网络同步的控制莱普诺夫函数 (CLF) 方法. 基于二进制程序的CLF (QP-CLF) 确保了驱动响应同步和输入到状态稳定性 (ISS),即使存在干扰.
科学领域:
- 控制理论
- 人工神经网络
- 系统工程
背景情况:
- 神经网络在现代计算中至关重要,但需要强大的控制策略.
- 同步和稳定是关键的挑战,特别是在外部干扰或不确定性下.
研究的目的:
- 开发和验证控制方法以实现神经网络中的驱动-响应同步.
- 在干扰的情况下确保闭环系统的输入到状态稳定性 (ISS).
主要方法:
- 使用二次式基于程序的控制Lyapunov函数 (QP-CLF) 的指数控制器的设计.
- 一个强大的控制器的建议,使用强大的QP-CLF方法来提高稳定性.
- 通过两个数值示例验证在不同条件下的性能.
主要成果:
- QP-CLF方法有效地实现了神经网络中的驱动-响应同步.
- 强大的QP-CLF控制器成功地确保了输入到状态稳定性 (ISS),尽管存在干扰和不确定性.
- 数字示例证实了这两个建议的控制策略的实际适用性和有效性.
结论:
- 拟议的QP-CLF和强大的QP-CLF方法为神经网络控制提供了有效的解决方案.
- 这些方法为设计复杂环境中的稳定和同步的神经网络系统提供了基础.
- 这项研究强调了强大的控制对神经网络可靠运行的重要性.
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