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The characteristics and self-time-delay synchronization of two-time-delay complex Lorenz system

机译:二次时滞复杂Lorenz系统的特性及自时滞同步

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Time-delay is frequently encountered in a variety of practical chaotic systems, such as chaos-communication. The behaviours of time-delay chaotic system are greatly different from those of the original system. Self-time-delay synchronization (STDS) implies that the synchronization between the time-delay system and the original system while maintaining the structure and parameters of systems unchanged, thus these various problems produced by time-delay in practice are avoided. Firstly, we investigate the characteristics of two-time-delay complex Lorenz system. Then we take one-time-delay and two-time-delay complex Lorenz system as examples, and design their controllers to realize STDS. One-time-delay complex Lorenz system is a special case of two-time-delay. Numerical simulations verify the validity of the STDS controllers. The controllers only involve error, and it is easy to realize in practice. Moreover, the time-delay chaotic system exhibits highly stochastic behaviors and unpredictable properties, which can be applied to chaos-communication and enhance the security of communication. (C) 2018 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:在各种实际的混沌系统(例如,混沌通信)中经常遇到时间延迟。时滞混沌系统的行为与原始系统的行为有很大不同。自时延同步(STDS)意味着时延系统与原始系统之间的同步,同时保持系统的结构和参数不变,从而避免了在实践中由时延产生的各种问题。首先,我们研究了两次时滞复杂的Lorenz系统的特性。然后以一时滞和二时滞复杂的Lorenz系统为例,设计其控制器来实现STDS。一次延迟复杂的Lorenz系统是两次延迟的特例。数值仿真验证了STDS控制器的有效性。控制器仅涉及错误,在实践中很容易实现。而且,该时滞混沌系统具有高度的随机性和不可预测的特性,可以应用于混沌通信中,提高了通信的安全性。 (C)2018富兰克林研究所。由Elsevier Ltd.出版。保留所有权利。

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