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The scope of this research is the identification of unknown piecewise constant parameters of linear regression equation under the finite excitation condition. Compared to the known methods, to make the computational burden lower, only one…

系统与控制 · 电气工程与系统科学 2022-08-05 Anton Glushchenko , Konstantin Lastochkin

This research introduces an extended application of neural networks for solving nonlinear partial differential equations (PDEs). A neural network, combined with a pseudo-arclength continuation, is proposed to construct bifurcation diagrams…

数值分析 · 数学 2025-07-24 Muhammad Luthfi Shahab , Hadi Susanto

A class of periodic differential $n$-dimensional systems with patch structure with (possibly infinite) delay and nonlinear impulses is considered. These systems incorporate very general nonlinearities and impulses whose signs may vary.…

经典分析与常微分方程 · 数学 2021-11-16 Teresa Faria , Rubén Figueroa

This paper explores the exponential stability of two nonlinear wave equations coupled through their velocities. The analysis is divided into two main cases. First, we consider a system where one equation is damped, while the other…

偏微分方程分析 · 数学 2025-07-11 Alhabib Moumni , Cristina Pignotti , Jawad Salhi , Mouhcine Tilioua

In a manner similar to the molecular chaos that underlies the stable thermodynamics of gases, neuronal system may exhibit microscopic instability in individual neuronal dynamics while a macroscopic order of the entire population possibly…

神经元与认知 · 定量生物学 2015-06-23 Yuzuru Yamanaka , Shun-ichi Amari , Shigeru Shinomoto

We establish the existence theory of several commonly used finite element (FE) nonlinear fully discrete solutions, and the convergence theory of a linearized iteration. First, it is shown for standard FE, SUPG and edge-averaged method…

数值分析 · 数学 2023-12-04 Yang Liu , Shi Shu , Ying Yang

We propose a dynamical neural network model with a hierarchical and modular structure. The network architecture can be derived by minimizing an energy function that is originally designed based on two kinds of neurons with quite different…

神经元与认知 · 定量生物学 2026-04-14 Kazuyoshi Tsutsumi , Ernst Niebur

The Nonlinear Noisy Leaky Integrate and Fire (NNLIF) model is widely used to describe the dynamics of neural networks after a diffusive approximation of the mean-field limit of a stochastic differential equation system. When the total…

偏微分方程分析 · 数学 2018-06-07 María J. Cáceres , Pierre Roux , Delphine Salort , Ricarda Schneider

We introduce and study a new model of interacting neural networks, incorporating the spatial dimension (e.g. position of neurons across the cortex) and some learning processes. The dynamic of each neural network is described via the elapsed…

偏微分方程分析 · 数学 2020-09-03 Delphine Salort , Nicolas Torres

Signal transmission delays tend to destabilize dynamical networks leading to oscillation, but their dispersion contributes oppositely toward stabilization. We analyze an integro-differential equation that describes the collective dynamics…

无序系统与神经网络 · 物理学 2008-04-18 Takahiro Omi , Shigeru Shinomoto

We propose a complement to constitutive modeling that augments neural networks with material principles to capture anisotropy and inelasticity at finite strains. The key element is a dual potential that governs dissipation, consistently…

计算工程、金融与科学 · 计算机科学 2025-12-09 Hagen Holthusen , Ellen Kuhl

We study the global dynamics of integrate and fire neural networks composed of an arbitrary number of identical neurons interacting by inhibition and excitation. We prove that if the interactions are strong enough, then the support of the…

动力系统 · 数学 2013-09-10 E. Catsigeras , P. Guiraud

In this paper, we are interested in investigating notions of stability for generalized linear differential equations (GLDEs). Initially, we propose and revisit several definitions of stability and provide a complete characterisation of them…

经典分析与常微分方程 · 数学 2023-02-16 Claudio A. Gallegos , Gonzalo Robledo

Excitatory and inhibitory nonlinear noisy leaky integrate and fire models are often used to describe neural networks. Recently, new mathematical results have provided a better understanding of them. It has been proved that a fully…

偏微分方程分析 · 数学 2016-09-07 María J. Cáceres , Ricarda Schneider

In this paper, we aim to find the conditions for input-state stability (ISS) and incremental input-state stability ($\delta$ISS) of Gated Graph Neural Networks (GGNNs). We show that this recurrent version of Graph Neural Networks (GNNs) can…

机器人学 · 计算机科学 2024-03-12 Antonio Marino , Claudio Pacchierotti , Paolo Robuffo Giordano

A general nonautonomous Nicholson equation with multiple pairs of delays in {\it mixed monotone} nonlinear terms is studied. Sufficient conditions for permanence are given, with explicit lower and upper uniform bounds for all positive…

经典分析与常微分方程 · 数学 2023-09-06 Teresa Faria

Recurrent neural networks (RNNs) are capable of learning features and long term dependencies from sequential and time-series data. The RNNs have a stack of non-linear units where at least one connection between units forms a directed cycle.…

神经与进化计算 · 计算机科学 2018-02-26 Hojjat Salehinejad , Sharan Sankar , Joseph Barfett , Errol Colak , Shahrokh Valaee

This paper presents a framework for the study of convergence when the nodes' dynamics may be both piecewise smooth and/or nonidentical across the network. Specifically, we derive sufficient conditions for global convergence of all node…

动力系统 · 数学 2014-04-08 Pietro DeLellis , Mario di Bernardo , Davide Liuzza

The process of pattern formation for a multi-species model anchored on a time varying network is studied. A non homogeneous perturbation superposed to an homogeneous stable fixed point can amplify, as follows a novel mechanism of…

统计力学 · 物理学 2017-10-11 Julien Petit , Ben Lauwens , Duccio Fanelli , Timoteo Carletti

Recurrent neural networks (RNNs) are complex dynamical systems, capable of ongoing activity without any driving input. The long-term behavior of free-running RNNs, described by periodic, chaotic and fixed point attractors, is controlled by…

神经元与认知 · 定量生物学 2021-08-06 Claus Metzner , Patrick Krauss