Digital Twins are transforming how organizations monitor physical systems, simulate future behaviour, improve reliability, and make better operational decisions. This course equips learners with practical knowledge to design, simulate, validate, and apply digital twins across engineering and industrial scenarios.

Digital Twins and Simulation Modeling with Python

Gain insight into a topic and learn the fundamentals.
Intermediate level
Recommended experience
6 hours to complete
Flexible schedule
Learn at your own pace
What you'll learn
Explain digital twin architectures, maturity levels, fidelity, and the relationship between digital models, shadows, and twins.
Apply simulation techniques to build discrete-event, agent-based, system dynamics, and physics-based models.
Analyze digital twin performance by calibrating and validating models using sensor data and quantitative measures.
Evaluate digital twin scenarios using predictive maintenance, what-if analysis, and enterprise governance considerations.
Details to know

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Recently updated!
October 2026
Assessments
6 assignments
Taught in English
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