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Simulation Engineering with Python Models, Monte Carlo Methods, and Process Simulation

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Simulation Engineering with Python: Models, Monte Carlo Methods, and Process Simulation by James Preston, Danny Munrow
English | May 2, 2026 | ISBN: N/A | ASIN: B0GZ9FJC24 | 508 pages | EPUB | 0.56 Mb
Reactive Publishing​

Simulation Engineering with Python is a practical guide to building, testing, and interpreting simulation models using Python. Designed for technical readers, analysts, engineers, and data professionals, this book introduces core simulation methods through structured examples and implementation-focused workflows.
The book covers foundational modeling concepts, Monte Carlo methods, event-based logic, stochastic systems, process simulation, input design, output analysis, validation, and scenario testing. Readers learn how simulation can be used to study uncertainty, evaluate decisions, compare system behavior, and model real-world processes in a disciplined computational environment.
Rather than treating simulation as a purely theoretical topic, this guide emphasizes reproducible Python workflows, clear model structure, and practical interpretation. It shows how to translate a system into assumptions, variables, rules, experiments, and measurable outputs.
Inside, readers will explore:
Simulation model design and structure
Monte Carlo methods for uncertainty analysis
Process and event-based simulation concepts
Random variables, distributions, and sampling
Scenario testing and sensitivity analysis
Model validation and interpretation
Python-based workflows for repeatable simulation studies
Whether used for operations analysis, financial modeling, engineering systems, logistics, healthcare processes, or decision support, this book provides a clear foundation for applying simulation techniques with Python.


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