首页> 外文会议>Cellular Nanoscale Networks and Their Applications (CNNA), 2010 >Pullback and forward attractors for dissipative cellular neural networks with additive noises
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Pullback and forward attractors for dissipative cellular neural networks with additive noises

机译:具有耗散噪声的耗散细胞神经网络的回撤吸引器和前向吸引器

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This work investigates the dissipative dynamical system in the infinite lattice Z with cellular neural networks as an example of application. The dynamics of each node depends on itself and nearby nodes by a nonlinear function. When each node is perturbed with weighted Gaussian white noise, there exists a unique pullback attractor and forward attractor whose domain of attraction are random tempered sets. Furthermore, we prove that the pullback and forward attractor are equivalent to a random equilibrium which is also tempered. Both convergence to the pullback and forward attractors are exponentially fast.
机译:这项工作以细胞神经网络为例,研究了无限晶格Z中的耗散动力系统。每个节点的动力学通过非线性函数取决于其自身和附近的节点。当每个节点都受到加权高斯白噪声的干扰时,就会存在一个独特的回拉吸引子和前向吸引子,它们的吸引域是随机的回火集。此外,我们证明了回撤吸引器和前向吸引器等效于也经过调节的随机平衡。向后拉吸引器和向前吸引器的收敛速度均呈指数级增长。

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