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International Journal of Science, Strategic Management and Technology

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ISSN: 3108-1762 (Online)
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AN INTELLIGENT EDGE COMPUTING FRAMEWORK FOR SECURE, LOW-LATENCY, AND ENERGY-EFFICIENT SMART DEVICES

AUTHORS:
Kolipaka Vinay
Valusa Venkat Sai Kumar
Mentor
D Asok Kumar
Affiliation
Department Of ECE, SVS Group of Institutions, Hanmakonda, Telangana
CC BY 4.0 License:
This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Abstract
This paper presented an Intelligent Edge Computing Framework for Secure, Low-Latency, and Energy-Efficient Smart Devices that integrates edge intelligence, adaptive task scheduling, resource-aware computation, secure communication, and cloud-assisted services to address the limitations of conventional cloud-centric architectures. By processing data closer to smart devices, the proposed framework significantly reduces latency, minimizes network bandwidth consumption, improves resource utilization, and enables faster real-time decision-making while ensuring data privacy and security. The experimental results demonstrate superior performance in terms of classification accuracy, ROC-AUC, Average Precision, execution time, and computational efficiency compared with existing cloud-based and edge computing approaches. The proposed framework provides a scalable, reliable, and energy-efficient solution for diverse Internet of Things (IoT) applications, including smart healthcare, industrial automation, intelligent transportation, and smart homes. Future work will focus on integrating federated learning, blockchain-enabled security, and next-generation 6G edge intelligence to further enhance scalability, privacy preservation, and autonomous decision-making in large-scale smart device ecosystems.
Keywords
Edge computing Smart devices Internet of Things (IoT) Edge intelligence Artificial intelligence Task offloading Resource management Low latency Energy efficiency Privacy preservation Real-time computing Secure communication.
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Vinay, K. & Kumar, V. V. S. (2026). An Intelligent Edge Computing Framework for Secure, Low-Latency, and Energy-Efficient Smart Devices. International Journal of Science, Strategic Management and Technology, 02(7), 1-9. https://doi.org/10.55041/ijsmt.v2i7.103

Vinay, Kolipaka, and Valusa Kumar. "An Intelligent Edge Computing Framework for Secure, Low-Latency, and Energy-Efficient Smart Devices." International Journal of Science, Strategic Management and Technology, vol. 02, no. 7, 2026, pp. 1-9. doi:https://doi.org/10.55041/ijsmt.v2i7.103.

Vinay, Kolipaka, and Valusa Kumar. "An Intelligent Edge Computing Framework for Secure, Low-Latency, and Energy-Efficient Smart Devices." International Journal of Science, Strategic Management and Technology 02, no. 7 (2026): 1-9. https://doi.org/https://doi.org/10.55041/ijsmt.v2i7.103.

References

  1. Mrabet, M., & Sliti, M. (2025). Towards secure, trustworthy and sustainable edge computing for smart cities: Innovative strategies and future prospects. IEEe Access.

  2. Shafique, A., Siraj, M., Din, S., Alsaif, S. A., Haseeb, K., & Cheng, B. (2026). Joint optimization secure and energy-efficient computation offloading framework IoT-enabled edge networks. Scientific Reports.

  3. Bargavi, S. M., Muhammed, H., Harish, P. S., & Dhanush, D. (2025). Edge computing and AI for real-time analytics in smart devices. Asian J. Basic Sci. Res7(2), 1-9.

  4. Singh, A., & Chatterjee, K. (2021). Securing smart healthcare system with edge computing. Computers & Security108, 102353.

  5. Babar, M., & Sohail Khan, M. (2021). ScalEdge: A framework for scalable edge computing in Internet of things–based smart systems. International journal of distributed sensor networks17(7), 15501477211035332.

  6. Ahmed, I. (2024). Deploying Low-Latency Edge AI in Medical IOT Networks: A Case Study of Secure Real-Time Patient Monitoring Systems. American Journal of Scholarly Research and Innovation3(02), 337-374.

  7. Saraswathi, S. (2025, March). Optimizing Latency and Energy Efficiency in Edge Computing with Reinforcement Learning and TinyML. In 2025 International Conference on Emerging Smart Computing and Informatics (ESCI)(pp. 1-8). IEEE.

  8. Banoth, S., M, V., Punna, H. S., P, M., Prakash, V., & M, J. (2025). Edge Computing Architectures for Low-Latency Data Processing in Internet of Things Applications. In ITM Web of Conferences(Vol. 76, p. 03003). EDP Sciences.

  9. Alatoun, K., Matrouk, K., Mohammed, M. A., Nedoma, J., Martinek, R., & Zmij, P. (2022). A novel low-latency and energy-efficient task scheduling framework for internet of medical things in an edge fog cloud system. Sensors22(14), 5327.

  10. Yuan, H., Bi, J., Wang, Z., Zhang, J., Zhou, M., & Buyya, R. (2025). Multi-Perspective and Energy-Efficient Deep Learning in Edge Computing. IEEE Internet of Things Journal.

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✓ All ethical standards met
This article has undergone plagiarism screening and double-blind peer review. Editorial policies have been followed. Authors retain copyright under CC BY-NC 4.0 license. The research complies with ethical standards and institutional guidelines.
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