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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Without Diagonal Nonlinear Requirements: The More GeneralP-Critical Dynamical Analysis for UPPAM Recurrent Neural Networks
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Without Diagonal Nonlinear Requirements: The More GeneralP-Critical Dynamical Analysis for UPPAM Recurrent Neural Networks

机译:没有对角线非线性要求:UPPAM递归神经网络的更一般的P临界动力学分析

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Continuous-time recurrent neural networks (RNNs) play an important part in practical applications. Recently, due to the ability of assuring the convergence of the equilibriums on the boundary line between stable and unstable, the study on the critical dynamics behaviors of RNNs has drawn especial attentions. In this paper, a new asymptotical stable theorem and two corollaries are presented for the unified RNNs, that is, the UPPAM RNNs. The analysis results given in this paper are under the generallyP-critical conditions, which improve substantially upon the existing relevant critical convergence and stability results, and most important, the compulsory requirement of diagonally nonlinear activation mapping in most recent researches is removed. As a result, the theory in this paper can be applied more generally.
机译:连续时间递归神经网络(RNN)在实际应用中起着重要作用。近年来,由于有能力保证稳定和不稳定边界线上的平衡收敛,对RNN的临界动力学行为的研究引起了特别的关注。本文针对统一的RNN,即UPPAM RNN,提出了一个新的渐近稳定定理和两个推论。本文给出的分析结果是在一般P临界条件下进行的,与现有的相关临界收敛性和稳定性结果相比,它得到了显着改善,最重要的是,取消了最近研究中对角非线性激活映射的强制性要求。结果,本文的理论可以更广泛地应用。

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