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Integration of Computer Networks and Artificial Neural Networks for an AI-based Network Operator

6 Citations•2024•
Binbin Wu, Jingyu Xu, Yifan Zhang
ArXiv

An integrated approach combining computer networks and artificial neural networks to construct an intelligent network operator, functioning as an AI model, achieving a 100% accuracy rate and eliminating operational risks is proposed.

Abstract

This paper proposes an integrated approach combining computer networks and artificial neural networks to construct an intelligent network operator, functioning as an AI model. State information from computer networks is transformed into embedded vectors, enabling the operator to efficiently recognize different pieces of information and accurately output appropriate operations for the computer network at each step. The operator has undergone comprehensive testing, achieving a 100% accuracy rate, thus eliminating operational risks. Additionally, a simple computer network simulator is created and encapsulated into training and testing environment components, enabling automation of the data collection, training, and testing processes. This abstract outline the core contributions of the paper while highlighting the innovative methodology employed in the development and validation of the AI-based network operator.