Analysis of the Use of Artificial Intelligence in Software-Defined Intelligent Networks: A Survey

Author:

Ospina Cifuentes Bayron Jesit12ORCID,Suárez Álvaro3ORCID,García Pineda Vanessa2ORCID,Alvarado Jaimes Ricardo4,Montoya Benitez Alber Oswaldo12ORCID,Grajales Bustamante Juan David5ORCID

Affiliation:

1. Telematics Engineering Department (DIT), Universidad de Las Palmas de la Gran Canaria (ULPGC), 3507 Las Palmas de Gran Canaria, Spain

2. Faculty of Engineering, Instituto Tecnológico Metropolitano, Medellín 050013, Colombia

3. Architecture and Competition Group (GAC), Instituto Universitario de Cibernética, Empresas y Sociedad (IUCES), Universidad de Las Palmas de Gran Canaria (ULPGC), 3507 Las Palmas de Gran Canaria, Spain

4. New Technologies Group (GNET), Unidades Tecnológicas de Santander (UTS), Santander 680005, Colombia

5. Measurement Analysis and Decision Support Laboratories, Department of Electronics and Telecommunications, Instituto Tecnologico Metropolitano, Medellín 050013, Colombia

Abstract

The distributed structure of traditional networks often fails to promptly and accurately provide the computational power required for artificial intelligence (AI), hindering its practical application and implementation. Consequently, this research aims to analyze the use of AI in software-defined networks (SDNs). To achieve this goal, a systematic literature review (SLR) is conducted based on the PRISMA 2020 statement. Through this review, it is found that, bottom-up, from the perspective of the data plane, control plane, and application plane of SDNs, the integration of various network planes with AI is feasible, giving rise to Intelligent Software Defined Networking (ISDN). As a primary conclusion, it was found that the application of AI-related algorithms in SDNs is extensive and faces numerous challenges. Nonetheless, these challenges are propelling the development of SDNs in a more promising direction through the adoption of novel methods and tools such as route optimization, software-defined routing, intelligent methods for network security, and AI-based traffic engineering, among others.

Funder

ULPGC—University of Las Palmas de Gran Canaria

Higher Education Institution Unidades Tecnológica de Santander

Publisher

MDPI AG

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