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System identification based on NARMAX model using Hopfield networks 被引量:1
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作者 石宏理 蔡远利 邱祖廉 《Journal of Shanghai University(English Edition)》 CAS 2006年第3期238-243,共6页
An approach is proposed to avoid model structure determination in system identification using NARMAX (nonlinear autoregressive moving average with exogenous inputs) model. Identification procedure is formulated as a... An approach is proposed to avoid model structure determination in system identification using NARMAX (nonlinear autoregressive moving average with exogenous inputs) model. Identification procedure is formulated as an optimization procedure of a apecial class of Hopfield network in the proposed approach. The particular structure of these Hopfield networks can avoid the local optimum problem. Training of these Hopfield network achieves model structure determination and parameter estimation. Convergence of Hopfield networks guarantees that a NARMAX model of random initial state will approach a valid identification model with accurate state parameters. Results of two simulation examples illustrate that this approach is efficient and simple. 展开更多
关键词 NARMAX model hopfield network system identification optimization
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A new chaotic Hopfield network with piecewise linear activation function 被引量:1
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作者 郑鹏升 唐万生 张建雄 《Chinese Physics B》 SCIE EI CAS CSCD 2010年第3期188-192,共5页
This paper presents a new chaotic Hopfield network with a piecewise linear activation function. The dynamic of the network is studied by virtue of the bifurcation diagram, Lyapunov exponents spectrum and power spectru... This paper presents a new chaotic Hopfield network with a piecewise linear activation function. The dynamic of the network is studied by virtue of the bifurcation diagram, Lyapunov exponents spectrum and power spectrum. Numerical simulations show that the network displays chaotic behaviours for some well selected parameters. 展开更多
关键词 hopfield network CHAOS piecewise linear function
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Hierarchical control based on Hopfield network for nonseparable opti mization problems
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作者 邢进生 李金玲 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2005年第3期618-623,共6页
The nonseparable optimization control problem is considered, where the overall objective function is not of an additive form with respect to subsystems. Since there exists the problem that computation is very slow whe... The nonseparable optimization control problem is considered, where the overall objective function is not of an additive form with respect to subsystems. Since there exists the problem that computation is very slow when using iteratire algorithms in multiobjective optimization, Hopfield optimization hierarchical network based on IPM is presented to overcome such slow computation difficulty. Asymptotic stability of this Hopfield network is proved and its equilibrium point is the optimal point of the original problem. The simulation shows that the net is effective to deal with the optimization control problem for large-scale non.separable steady state systems. 展开更多
关键词 steady state optimization multi-objective optimization hopfield network.
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State Sampling Dependence of Hopfield Network Inference
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作者 HUANG Hal-Ping 《Communications in Theoretical Physics》 SCIE CAS CSCD 2012年第1期169-172,共4页
The fully connected Hopfield network is inferred based on observed magnetizations and pairwise correlations.We present the system in the glassy phase with low temperature and high memory load.We find that the inferenc... The fully connected Hopfield network is inferred based on observed magnetizations and pairwise correlations.We present the system in the glassy phase with low temperature and high memory load.We find that the inference error is very sensitive to the form of state sampling.When a single state is sampled to compute magnetizations and correlations,the inference error is almost indistinguishable irrespective of the sampled state.However,the error can be greatly reduced if the data is collected with state transitions.Our result holds for different disorder samples and accounts for the previously observed large fluctuations of inference error at low temperatures. 展开更多
关键词 INFERENCE hopfield network spin glass
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Exponential Stability of Periodic Solution for Delayed Hopfield Networks
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作者 XIANG Hong-jun WANG Jin-hua 《Chinese Quarterly Journal of Mathematics》 CSCD 北大核心 2008年第2期292-300,共9页
The paper is devoted to periodic attractor of delayed Hopfield neural networks with time-varying. By constructing Lyapunov functionals and using inequality techniques, some new sufficient criteria are obtained to guar... The paper is devoted to periodic attractor of delayed Hopfield neural networks with time-varying. By constructing Lyapunov functionals and using inequality techniques, some new sufficient criteria are obtained to guarantee the existence and global exponential stability of periodic attractor. Our results improve and extend some existing ones in [13-14]. One example is also worked out to demonstrate the advantages of our results. 展开更多
关键词 hopfield neural networks global exponential stability Lyapunov functional periodic solution
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Coexistence behavior of asymmetric attractors in hyperbolic-type memristive Hopfield neural network and its application in image encryption
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作者 李晓霞 何倩倩 +2 位作者 余天意 才壮 徐桂芝 《Chinese Physics B》 SCIE EI CAS CSCD 2024年第3期302-315,共14页
The neuron model has been widely employed in neural-morphic computing systems and chaotic circuits.This study aims to develop a novel circuit simulation of a three-neuron Hopfield neural network(HNN)with coupled hyper... The neuron model has been widely employed in neural-morphic computing systems and chaotic circuits.This study aims to develop a novel circuit simulation of a three-neuron Hopfield neural network(HNN)with coupled hyperbolic memristors through the modification of a single coupling connection weight.The bistable mode of the hyperbolic memristive HNN(mHNN),characterized by the coexistence of asymmetric chaos and periodic attractors,is effectively demonstrated through the utilization of conventional nonlinear analysis techniques.These techniques include bifurcation diagrams,two-parameter maximum Lyapunov exponent plots,local attractor basins,and phase trajectory diagrams.Moreover,an encryption technique for color images is devised by leveraging the mHNN model and asymmetric structural attractors.This method demonstrates significant benefits in correlation,information entropy,and resistance to differential attacks,providing strong evidence for its effectiveness in encryption.Additionally,an improved modular circuit design method is employed to create the analog equivalent circuit of the memristive HNN.The correctness of the circuit design is confirmed through Multisim simulations,which align with numerical simulations conducted in Matlab. 展开更多
关键词 hyperbolic-type memristor hopfield neural network(HNN) asymmetric attractors image encryption
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Stability of second order Hopfield neural networks with time delays
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作者 Wang Shuna Liu Jiang 《江苏师范大学学报(自然科学版)》 CAS 2024年第3期49-55,共7页
Dynamical behaviors of a class of second order Hopfield neural networks with time delays is investigated.The existence of a unique equilibrium point is proved by using Brouwer's fixed point theorem and the counter... Dynamical behaviors of a class of second order Hopfield neural networks with time delays is investigated.The existence of a unique equilibrium point is proved by using Brouwer's fixed point theorem and the counter proof method,and some sufficient conditions for the global asymptotic stability of the equilibrium point are obtained through the combination of a suitable Lyapunov function and an algebraic inequality technique. 展开更多
关键词 hopfield neural network Lyapunov function existence and uniqueness global asymptotic stability
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一种新型复合指数型局部有源忆阻器耦合的Hopfield神经网络
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作者 王梦蛟 †杨琛 +1 位作者 贺少波 李志军 《物理学报》 SCIE EI CAS CSCD 北大核心 2024年第13期52-63,共12页
由忆阻耦合的神经网络模型,因其能更真实地反映生物神经系统的复杂动力学特性而被广泛研究.目前用于耦合神经网络的忆阻器数学模型主要集中在一次函数、绝对值函数、双曲正切函数等,为进一步丰富忆阻耦合神经网络模型,且考虑到一些掺杂... 由忆阻耦合的神经网络模型,因其能更真实地反映生物神经系统的复杂动力学特性而被广泛研究.目前用于耦合神经网络的忆阻器数学模型主要集中在一次函数、绝对值函数、双曲正切函数等,为进一步丰富忆阻耦合神经网络模型,且考虑到一些掺杂半导体中粒子的运动规律,设计了一种新的复合指数型局部有源忆阻器,并将其作为耦合突触用于Hopfield神经网络,利用基本的动力学分析方法,研究了系统在不同参数下的动力学行为,以及在不同初始值下多种分岔模式共存的现象.实验结果表明,忆阻突触内部参数对系统具有调控作用,且该系统拥有丰富的动力学行为,包括对称吸引子共存、非对称吸引子共存、大范围的混沌状态和簇发振荡等.最后,用STM32单片机对系统进行了硬件实现. 展开更多
关键词 局部有源忆阻器 hopfield神经网络 多种共存吸引子 簇发振荡
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离散Hopfield神经网络在职业院校学生综合素养评价中的应用研究
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作者 俞骋 《科技创新与应用》 2024年第20期150-153,共4页
为克服教育评估中人为因素的干扰,提高评估的准确性和效率,该文探索将离散Hopfield神经网络应用到职业院校学生综合素养的评价中。Matlab仿真发现,通过设置合适的神经元平衡点,离散Hopfield神经网络可根据输入的指标数据对学生的职业综... 为克服教育评估中人为因素的干扰,提高评估的准确性和效率,该文探索将离散Hopfield神经网络应用到职业院校学生综合素养的评价中。Matlab仿真发现,通过设置合适的神经元平衡点,离散Hopfield神经网络可根据输入的指标数据对学生的职业综合素养给出有效的评估,评估结果与专家评估的结果完全一致。 展开更多
关键词 离散hopfield神经网络 职业院校 综合素养评价 二值化编码 教育评估
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随机时滞Hopfield神经网络分步θ方法的一般衰减率稳定性
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作者 秦国栋 刘凯 方建印 《中原工学院学报》 CAS 2024年第2期6-11,共6页
旨在研究随机时滞Hopfield神经网络分步θ方法的一般衰减率稳定性。当θ∈[0,1/2)时,在步长受限的条件下,随机时滞Hopfield神经网络分步θ方法是一般衰减率稳定的。对于θ∈[1/2,1],不需要额外的步长要求,即可保证随机时滞Hopfield神经... 旨在研究随机时滞Hopfield神经网络分步θ方法的一般衰减率稳定性。当θ∈[0,1/2)时,在步长受限的条件下,随机时滞Hopfield神经网络分步θ方法是一般衰减率稳定的。对于θ∈[1/2,1],不需要额外的步长要求,即可保证随机时滞Hopfield神经网络分步θ方法的一般衰减率稳定性。最后,通过一个数值例子验证所得结果的有效性。 展开更多
关键词 一般衰减率稳定性 随机时滞hopfield神经网络 分步θ方法
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概反周期函数及其在一类Hopfield神经网络上的应用
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作者 赵莉莉 赵霜 《山东师范大学学报(自然科学版)》 2024年第1期43-51,共9页
探讨一类具有混合时滞的中立型Hopfield神经网络的概反周期解的存在性与稳定性。首先,讨论了概周期函数与概反周期函数之间的关系,证明了全体概反周期函数构成的集合,是概周期函数空间的一个闭子空间。最后,利用不动点原理得到Hopfield... 探讨一类具有混合时滞的中立型Hopfield神经网络的概反周期解的存在性与稳定性。首先,讨论了概周期函数与概反周期函数之间的关系,证明了全体概反周期函数构成的集合,是概周期函数空间的一个闭子空间。最后,利用不动点原理得到Hopfield神经网络存在一个唯一的有界解,而且该解函数还是概反周期函数。概反周期函数是比概周期函数更精细的函数,对神经网络概反周期解的存在性与唯一性的探讨,相较于对概周期解的存在性以及唯一性的探讨,能够更加精确地描述神经网络的动力学性质,所得结论是新颖的,是现有结论的进一步完善与补充。 展开更多
关键词 hopfield神经网络 概周期函数 概反周期函数 BANACH空间 不动点原理
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一类具多比例时滞Hopfield神经网络的稳定性
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作者 王翔宇 赵莉莉 《山东师范大学学报(自然科学版)》 2024年第3期250-258,共9页
讨论了一类具多比例时滞Hopfield神经网络的稳定性,通过构造合适的Lyapunov泛函,得到了神经网络全局渐近稳定、全局多项式稳定和全局指数稳定的充分条件。最后,给出相应的数值例子,验证了结论的正确性。
关键词 多比例时滞hopfield神经网络 LYAPUNOV泛函 全局渐近稳定 全局多项式稳定 全局指数稳定
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Hopfield neural network based on ant system 被引量:6
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作者 洪炳镕 金飞虎 郭琦 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2004年第3期267-269,共3页
Hopfield neural network is a single layer feedforward neural network. Hopfield network requires some control parameters to be carefully selected, else the network is apt to converge to local minimum. An ant system is ... Hopfield neural network is a single layer feedforward neural network. Hopfield network requires some control parameters to be carefully selected, else the network is apt to converge to local minimum. An ant system is a nature inspired meta heuristic algorithm. It has been applied to several combinatorial optimization problems such as Traveling Salesman Problem, Scheduling Problems, etc. This paper will show an ant system may be used in tuning the network control parameters by a group of cooperated ants. The major advantage of this network is to adjust the network parameters automatically, avoiding a blind search for the set of control parameters. This network was tested on two TSP problems, 5 cities and 10 cities. The results have shown an obvious improvement. 展开更多
关键词 hopfield network ant system TSP combinatorial optimization problem
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改进离散Hopfield神经网络在煤矿人因评估中的应用 被引量:3
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作者 李红霞 张倩 +1 位作者 田水承 张丹 《安全与环境学报》 CAS CSCD 北大核心 2023年第6期1978-1984,共7页
为了预防和控制煤矿人因事故发生,将离散Hopfield神经网络应用于煤矿人因安全评估中。首先根据人因分析与分类系统(Human Factors Analysis and Classification System,HFACS)模型建立煤矿人因安全风险评估体系,体系包含多个指标;其次... 为了预防和控制煤矿人因事故发生,将离散Hopfield神经网络应用于煤矿人因安全评估中。首先根据人因分析与分类系统(Human Factors Analysis and Classification System,HFACS)模型建立煤矿人因安全风险评估体系,体系包含多个指标;其次是构建输入矩阵,借助模糊综合评价法对评估指标量化编码;最后,运用学习率优化的离散Hopfield神经网络展开煤矿人因安全评估,以模型输出结果确定评估对象风险等级。将构建的煤矿人因安全评估模型与传统评估方法进行比较,结果表明该模型合理有效,可用于煤矿人因安全评估,为煤矿人因安全管理提供依据。 展开更多
关键词 安全社会工程 人因安全 离散hopfield神经网络 模糊综合评价
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Delay-dependent Criteria for Robust Stability of Uncertain Switched Hopfield Neural Networks 被引量:2
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作者 Xu-Yang Lou Bao-Tong Cui 《International Journal of Automation and computing》 EI 2007年第3期304-314,共11页
This paper deals with the problem of delay-dependent robust stability for a class of switched Hopfield neural networks with time-varying structured uncertainties and time-varying delay. Some Lyapunov-KrasoVskii functi... This paper deals with the problem of delay-dependent robust stability for a class of switched Hopfield neural networks with time-varying structured uncertainties and time-varying delay. Some Lyapunov-KrasoVskii functionals are constructed and the linear matrix inequality (LMI) approach and free weighting matrix method are employed to devise some delay-dependent stability criteria which guarantee the existence, uniqueness and global exponential stability of the equilibrium point for all admissible parametric uncertainties. By using Leibniz-Newton formula, free weighting matrices are employed to express this relationship, which implies that the new criteria are less conservative than existing ones. Some examples suggest that the proposed criteria are effective and are an improvement over previous ones. 展开更多
关键词 Delay-dependent criteria robust stability switched systems hopfield neural networks time-varying delay linear matrix inequality.
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Convergence in Continuous Hopfield Neural Network with Delays 被引量:3
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作者 Cao Jinde Li Qiong(Adult Education College of Yunnan University,Kunming 650091)(Kunming Junior Normal College) 《生物数学学报》 CSCD 北大核心 1996年第4期12-15,共4页
A sufficient condition are derived for the global asymptotic stability of the equilibrium of continuous Hopfield neural networks with delays of the
关键词 hopfield NEURAL network STABILITY
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A novel chaotic system with one source and two saddle-foci in Hopfield neural networks 被引量:1
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作者 陈鹏飞 陈增强 吴文娟 《Chinese Physics B》 SCIE EI CAS CSCD 2010年第4期134-139,共6页
This paper presents the finding of a novel chaotic system with one source and two saddle-foci in a simple three-dimensional (3D) autonomous continuous time Hopfield neural network. In particular, the system with one... This paper presents the finding of a novel chaotic system with one source and two saddle-foci in a simple three-dimensional (3D) autonomous continuous time Hopfield neural network. In particular, the system with one source and two saddle-foci has a chaotic attractor and a periodic attractor with different initial points, which has rarely been reported in 3D autonomous systems. The complex dynamical behaviours of the system are further investigated by means of a Lyapunov exponent spectrum, phase portraits and bifurcation analysis. By virtue of a result of horseshoe theory in dynamical systems, this paper presents rigorous computer-assisted verifications for the existence of a horseshoe in the system for a certain parameter. 展开更多
关键词 hopfield neural network CHAOS BIFURCATION Lyapunov exponents
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Synchronization criteria for coupled Hopfield neural networks with time-varying delays 被引量:1
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作者 M.J.Park O.M.Kwon +2 位作者 Ju H.Park S.M.Lee E.J.Cha 《Chinese Physics B》 SCIE EI CAS CSCD 2011年第11期140-150,共11页
This paper proposes new delay-dependent synchronization criteria for coupled Hopfield neural networks with time-varying delays. By construction of a suitable Lyapunov Krasovskii's functional and use of Finsler's lem... This paper proposes new delay-dependent synchronization criteria for coupled Hopfield neural networks with time-varying delays. By construction of a suitable Lyapunov Krasovskii's functional and use of Finsler's lemma, novel synchronization criteria for the networks are established in terms of linear matrix inequalities (LMIs) which can be easily solved by various effective optimization algorithms. Two numerical examples are given to illustrate the effectiveness of the proposed methods. 展开更多
关键词 hopfield neural networks coupling delay SYNCHRONIZATION Lyapunov method
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ON THE ASYMPTOTIC BEHAVIOR OF HOPFIELD NEURAL NETWORK WITH PERIODIC INPUTS 被引量:1
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作者 向兰 周进 +1 位作者 刘曾荣 孙姝 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2002年第12期1367-1373,共7页
Without assuming the boundedness and differentiability of the nonlinear activation functions, the new sufficient conditions of the existence and the global exponential stability of periodic solutions for Hopfield neur... Without assuming the boundedness and differentiability of the nonlinear activation functions, the new sufficient conditions of the existence and the global exponential stability of periodic solutions for Hopfield neural network with periodic inputs are given by using Mawhin's coincidence degree theory and Liapunov's function method. 展开更多
关键词 hopfield neural network periodic solution global exponential stability coincidence degree Liapunov's function
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Existence and Exponential Stability of Almost Periodic Solution for Hopfield Neural Network Equations with Almost Periodic Imput 被引量:2
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作者 杨喜陶 《Northeastern Mathematical Journal》 CSCD 2006年第2期199-205,共7页
By constructing Liapunov functions and building a new inequality, we obtain two kinds of sufficient conditions for the existence and global exponential stability of almost periodic solution for a Hopfield-type neural ... By constructing Liapunov functions and building a new inequality, we obtain two kinds of sufficient conditions for the existence and global exponential stability of almost periodic solution for a Hopfield-type neural networks subject to almost periodic external stimuli. Irt this paper, we assume that the network parameters vary almost periodically with time and we incorporate variable delays in the processing part of the network architectures. 展开更多
关键词 hopfield neural network almost periodic solution exponential stability Liapunov function
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