Skip to content
Open access

Secure IoT Communication Frameworks for Industrial Robotics

2022 · International Journal of Intelligent Automation & Robotics Engineering · Vol 5, pp. 01-10 · 0 citations

TL;DR

This study proposes a secure IoT communication framework specifically designed for industrial robotic environments by integrating lightweight encryption, blockchain-assisted device authentication, edge-based intrusion detection, artificial intelligence-enabled anomaly detection, and secure MQTT/OPC UA communication protocols.

Abstract

Industrial robotics has become one of the fundamental pillars of Industry 4.0 and the emerging Industry 5.0 paradigm, where intelligent automation, collaborative robots, and cyber-physical production systems continuously exchange large volumes of operational data through Industrial Internet of Things (IIoT) networks. While IoT-enabled robotic platforms significantly improve manufacturing efficiency, predictive maintenance, remote monitoring, and autonomous decision-making, they simultaneously introduce substantial cybersecurity risks arising from heterogeneous communication protocols, distributed edge devices, and cloud-based control infrastructures. Traditional industrial communication architectures primarily focused on reliability and deterministic performance, often overlooking advanced security mechanisms capable of defending against sophisticated cyberattacks such as spoofing, replay attacks, distributed denial-of-service (DDoS), ransomware, and unauthorized robotic command injection. This study proposes a secure IoT communication framework specifically designed for industrial robotic environments by integrating lightweight encryption, blockchain-assisted device authentication, edge-based intrusion detection, artificial intelligence-enabled anomaly detection, and secure MQTT/OPC UA communication protocols. The proposed architecture enhances confidentiality, integrity, authentication, availability, and real-time communication while minimizing computational overhead. Comparative analysis demonstrates improvements in communication latency, packet delivery ratio, authentication accuracy, intrusion detection rate, and network resilience when compared with conventional industrial IoT security mechanisms. The proposed framework provides a scalable and intelligent cybersecurity solution suitable for autonomous manufacturing, collaborative robotics, smart factories, and Industry 5.0 applications where secure machine-to-machine communication is critical.

Read PDF

Similar papers

Open access Aug 2026

Zero Trust Architecture for Industrial IoT Networks

The study concludes that Zero Trust is most practical in IIoT when implemented incrementally, with OT safety and availability treated as first-class requirements and legacy assets protected through compensating controls rather than forced modernization.

M. Abba, W. Blessing, Raymond Ternenge Igbudu · 0 citations
#federated learning Review Open access Sep 2026

Cyber Attacks in the Internet of Things (IoT) and Intelligent Defense Mechanisms

The Internet of Things (IoT) has connected billions of physical objects to the internet, enabling smarter homes, manufacturing, critical infrastructure, transportation, and healthcare. However, IoT ecosystems are increasingly vulnerable to cyberattacks due to the growing number of resource-limited devices, weak authent...

Esraa Ward, Seyed Amin Hosseini Seno · 0 citations
Open access 2026

Cyber Security of Smart Manufacturing According to the Industry 5.0 Model: Challenges, Solutions and Future Development Directions

As manufacturing increasingly embraces the digital transformation of Industry 4.0/5.0, the integration of advanced technologies such as the Internet of Things (IoT), artificial intelligence (AI), robotics and edge/cloud computing has led to the creation of highly interconnected and automated systems. Industry 5.0 empha...

Sonja Dimitrijević, V. Majstorović · 0 citations
#federated learning Open access Sep 2026

A Federated Multi-Agent Communication Framework for Autonomous Cyber Defense in Edge–Cloud IoT Environments

The FMAD framework integrates multiple collaborative agents for secure communication, federated learning, and coordinated cyber defense in edge–cloud IoT environments and provides a promising foundation for intelligent agent communication and scalable autonomous cyber defense in real-world edge–cloud IoT environments.

Hakan Aydın · 0 citations
Preprint Aug 2026

CERTIoT-6G: Continuous Cybersecurity Certification for IoT Devices in 5G/6G Networks

CERTIoT-6G, a Security-as-a-Service (SECaaS) framework that enables automated cybersecurity certification and continuous compliance monitoring of IoT devices operating in 5G and future 6G networks is presented.

Evangelos Lempesis, F. Palmese, Hamed Haddadi et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.