Agentic digital twins: bridging model-based and AI-driven decision-making support for a new era of supply chain and operations management
Агентные цифровые двойники: объединение модельной и управляемой искусственным интеллектом поддержки принятия решений в новую эпоху управления цепочками поставок и операционной деятельностью
2026-02-19
SCID: 54.1/3afm2k6d
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AI-powered supply chainsICARUS frameworkagentic AIagentic supply chain digital twinsmodel-based optimization and simulation
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Abstract (AI)
Agentic AI (artificial intelligence) can profoundly impact model-based decision-making support. This paper conceptualises the notion of agentic supply chain digital twins (A-SCDT) triangulating the composition of agentic AI, digital twins, and model-based optimisation and simulation. Our contribution is twofold. First, we conceptualise the A-SCDT as a distinct and novel area of practical and theoretical importance. Second, we offer a framework named ICARUS (Interaction, Creativity, Adaptation, Reasoning, Ubiquity, and Synchronization), which allows to structure and systematically consider the A-SCDT impacts on future developments of model-based methods in the era of agentic AI systems. Grounding into the ICARUS framework, we elaborate on how the A-SCDT can aid in decision processes describing two industry cases and deducing some generalised insights. We propose a research agenda to stay impactful and relevant in the times of AI-powered supply chains and operations, discussing new topics, barriers, and limitations stemming from AI. Finally, we elaborate on the managerial implications of A-SCDTs and conclude that agentic AI and digital twins are triggering tectonic shifts towards a new era in supply chain and operations management, bridging model-based and model-free, AI-driven decision-making support.
Key Findings
1
Agentic AI and digital twins are argued to bridge model-based and model-free decision support, driving a new era in supply chain and operations management.
2
The ICARUS framework—Interaction, Creativity, Adaptation, Reasoning, Ubiquity, and Synchronization—structures analysis of A-SCDTs’ impacts on future model-based methods.
3
The paper conceptualizes agentic supply chain digital twins (A-SCDTs) as an integration of agentic AI, digital twins, and model-based optimization and simulation.
4
The paper identifies research topics, barriers, and limitations arising from applying agentic AI to supply chains and operations.
5
Two industry cases illustrate how A-SCDTs can support and transform supply chain and operations decision processes.
Research Object
agentic supply chain digital twins (A-SCDTs)
Research Subject
their impact on model-based decision-making support and the integration of agentic AI with model-based optimisation and simulation in supply chain and operations management
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2026-02-19
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References available in scid.ai3
Generative artificial intelligence in supply chain and operations management: a capability-based framework for analysis and implementation2024
Enhancing internal supply chain management in manufacturing through a simulation-based digital twin platform2024
A digital supply chain twin for managing the disruption risks and resilience in the era of Industry 4.02020