AI5GTest: AI-Driven Specification-Aware Automated Testing and Validation of 5G O-RAN Components
Abiodun Ganiyu, Pranshav Gajjar, Vijay K Shah

TL;DR
AI5GTest is an AI-driven framework that automates the testing and validation of 5G O-RAN components, reducing manual effort and increasing accuracy by leveraging large language models for specification-aware testing.
Contribution
The paper introduces a novel AI-powered testing framework utilizing cooperative LLMs for automated, specification-aware validation of O-RAN components, addressing manual and scalability limitations.
Findings
Reduces test execution time significantly
Maintains high validation accuracy
Provides root cause analysis for anomalies
Abstract
The advent of Open Radio Access Networks (O-RAN) has transformed the telecommunications industry by promoting interoperability, vendor diversity, and rapid innovation. However, its disaggregated architecture introduces complex testing challenges, particularly in validating multi-vendor components against O-RAN ALLIANCE and 3GPP specifications. Existing frameworks, such as those provided by Open Testing and Integration Centres (OTICs), rely heavily on manual processes, are fragmented and prone to human error, leading to inconsistency and scalability issues. To address these limitations, we present AI5GTest -- an AI-powered, specification-aware testing framework designed to automate the validation of O-RAN components. AI5GTest leverages a cooperative Large Language Models (LLM) framework consisting of Gen-LLM, Val-LLM, and Debug-LLM. Gen-LLM automatically generates expected procedural…
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Taxonomy
TopicsSoftware Testing and Debugging Techniques · Software-Defined Networks and 5G · Adversarial Robustness in Machine Learning
