A Dual Assignment Network with Applications in Deterministic Communication Path Selection and Multi-Vehicle Target Assignment

Jiasen Wang, Jun Wang
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Abstract

In this paper, a continuous-time dual neural network model for linear assignment is presented. The model is based on a dual formulation of the primal linear assignment problem. Global convergence of the dual neural network is ensured under given conditions and assumptions. The dual neural network is compact in the sense that its number of neurons is the same as the number of agents. Simulation results on selecting communication paths with deterministic delay and jitter quality of services in networks and assigning multiple vehicles to formation targets are presented to substantiate the efficacy of the dual neural network model.
双重分配网络在确定性通信路径选择和多车目标分配中的应用
本文提出了一种线性分配的连续时间对偶神经网络模型。该模型基于原始线性分配问题的对偶公式。在给定的条件和假设下,保证了对偶神经网络的全局收敛性。双神经网络是紧凑的,因为它的神经元数量与智能体的数量相同。通过对网络中具有确定性延迟和抖动服务质量的通信路径选择和多车辆分配编队目标的仿真结果,验证了双神经网络模型的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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