时变矩阵广义Sinkhorn标度的连续ZND(张神经动力学)模型

Jianzhen Xiao, Canhui Chen, Yunong Zhang
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引用次数: 1

摘要

本文首先提出了时变矩阵广义Sinkhorn标度的张神经动力学(ZND)模型。具体来说,利用降维技术,提出并分析了时变矩阵标度的连续时间ZND模型。并给出了相应的理论证明,证明了所提出的ZND模型的理论有效性。此外,还进行了方形和矩形两种情况下的数值实验。数值实验和结果验证了该模型的有效性和准确性。
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Continuous ZND (Zhang Neural Dynamics) Model for Generalized Sinkhorn Scaling of Time-Varying Matrix
In this paper, we first propose a Zhang neural dynamics (ZND) model for the generalized Sinkhorn scaling of time-varying matrix. Specifically, by using the dimensional reduction technique, a continuous-time ZND model of time-varying matrix scaling is proposed and analyzed. In addition, the corresponding theoretical proofs are given, which prove the theoretical validity of the proposed ZND model. Moreover, two numerical experiments containing a square case and a rectangle case are also conducted. Numerical experiments and results substantiate the effectiveness and accuracy of the proposed ZND model.
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