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International Journal of Creative and Open Research in Engineering and Management

A Peer-Reviewed, Open-Access International Journal Supporting Multidisciplinary Research, Digital Publishing Standards, DOI Registration, and Academic Indexing.
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ISSN: 3108-1754 (Online)
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ISO Certification: 9001:2015
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License: CC BY 4.0
Peer Review: Double Blind
Volume 02, Issue 8

Published on: August 2026

AN INTEGRATED AI–FKF FRAMEWORK FOR MULTI-SCALE SUPPLY-CHAIN RISK PREDICTION AND MITIGATION

Shubham S Shinde S M

Independent Researcher

Mathematics/ Govt College of Engg / Karad

Article Status

Plagiarism Passed Peer Reviewed Open Access

Available Documents

Abstract

Global supply chains are increasingly exposed to disruptions arising from geopolitical instability, cyber threats, climate events, transportation constraints, and interconnected operational dependencies. This study develops an integrated framework for AI-driven supply-chain risk prediction and mitigation by combining artificial intelligence, IoT, digital twins, blockchain, intelligent transportation systems, FKF/FKL spectral analysis, and quantum optimization. The proposed PREDICT–MITIGATE framework represents resilience as a continuous feedback process in which heterogeneous operational data are transformed into disruption indicators, evaluated through predictive and simulation-based methods, and converted into feasible mitigation actions. FKF/FKL techniques provide complementary multi-scale and temporal representations, while digital twins support scenario analysis and optimization methods assist adaptive decision-making. Blockchain strengthens data provenance and accountability, whereas sustainability and energy constraints ensure that predicted responses remain physically feasible. The study synthesizes the selected research corpus, identifies major technological relationships, and highlights challenges involving explainability, interoperability, cybersecurity, governance, and human–AI collaboration. The framework provides a conceptual foundation for transitioning supply-chain risk management from reactive response toward predictive, adaptive, secure, and sustainable resilience.

Keywords— artificial intelligence; swipe controller; supply chain risk management; predictive analytics; digital twin; blockchain; quantum computing; Industry 5.0; FKF/FKL transform; resilience; mitigation

How to Cite this Paper

S, S. & M, S. S. (2026). An Integrated AI–FKF Framework for Multi-Scale Supply-Chain Risk Prediction and Mitigation. International Journal of Creative and Open Research in Engineering and Management, <i>02</i>(8), 1-9. https://doi.org/10.55041/ijcope.v2i8.286

S, Shubham, and Shinde M. "An Integrated AI–FKF Framework for Multi-Scale Supply-Chain Risk Prediction and Mitigation." International Journal of Creative and Open Research in Engineering and Management, vol. 02, no. 8, 2026, pp. 1-9. doi:https://doi.org/10.55041/ijcope.v2i8.286.

S, Shubham, and Shinde M. "An Integrated AI–FKF Framework for Multi-Scale Supply-Chain Risk Prediction and Mitigation." International Journal of Creative and Open Research in Engineering and Management 02, no. 8 (2026): 1-9. https://doi.org/https://doi.org/10.55041/ijcope.v2i8.286.

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References

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  • All submissions are screened under plagiarism detection.
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  • Peer Review Type: Double-Blind Peer Review
  • Published on: Sep 01 2026
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