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Modelling Practical Problems in Complex Systems: Simulation, Forecasting and Management

Autor Hugo Fort
en Limba Engleză Hardback – 14 mai 2026
Complex systems — characterized by self-organization, emergence, and profound non-linearity — govern everything from global financial markets to ecological stability. Navigating this complexity requires a unified mathematical framework that moves beyond traditional linear models. This book provides that essential toolkit, offering a robust, interdisciplinary approach to simulation, forecasting, and management across engineering, economic, and environmental fields.
What sets this volume apart is its integration of ecological and evolutionary perspectives with quantitative approaches to simulate, forecast, and manage complexity in diverse domains including finance, agriculture, and environmental science.
Throughout the book, readers will find practical examples, case studies, and advice on how to apply scientific modeling techniques to solve real-world problems. It presents insights into best practices and strategies for using modeling and simulation effectively in various fields.
This book is an indispensable resource for researchers, quantitative analysts, and advanced students in complexity science, evolutionary economics, quantitative finance, and ecological modeling. It provides the theoretical depth and practical, data-driven methods necessary to analyze and manage the world's most challenging complex systems.
Key Features
  • Contains an in-depth treatment of nonlinear dynamics and evolutionary processes as foundational frameworks for understanding complex system behavior.
  • Provides applications of dynamical systems to real-world problems in ecology, environmental sciences, economics and financial markets, emphasizing the parallels between biological evolution and market competition.
  • Presents illustrations through a variety of case studies, featuring practical applications to S&P 500 stock dynamics, optimization of livestock production, and forecasting the collapse of threatened biomes.
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Specificații

ISBN-13: 9781032909547
ISBN-10: 1032909544
Pagini: 336
Ilustrații: 178
Dimensiuni: 156 x 234 mm
Ediția:1
Editura: CRC Press
Colecția CRC Press

Public țintă

Academic, Postgraduate, Professional Practice & Development, and Undergraduate Advanced

Cuprins

Chapter 1 COMPLEX SYSTEMS AND PREDICTABILITY  Chapter 2 NONLINEAR DYNAMICS  Chapter 3 EVOLUTIONARY DYNAMICS  Chapter 4 POPULATION DYNAMICS APPROACHES TO ECONOMICS AND FINANCE Chapter 5 A PROBABILISTIC FRAMEWORK FOR PREDICTABILITY BASED ON INFORMATION THEORY Chapter 6 FORECASTING METHODS FOR COMPLEX SYSTEMS  Chapter 7 CONTROL AND MANAGEMENT OF COMPLEX SYSTEMS: PRACTICAL EXAMPLES IN AGRICULTURE & ENVIRONMENTAL SCIENCE Chapter 8 THE LIMITS OF PREDICTABILITY THROUGH MATHEMATICS AND COMPUTATION 

Notă biografică

Dr. Hugo Fort is Professor at the Physics Department of the Faculty of Sciences of the Republic University (Montevideo, Uruguay) and Head of the Complex System Group. After earning his PhD in Physics from the Autonomous University of Barcelona in 1994 he conducted research on quantum field theory. Since 2001 his scientific interests evolved from theoretical physics to complex systems and mathematical modelling applied to problems in biology, with focus in ecology & evolution. Professor Fort is currently involved in several international research collaborations pursuing used-inspired basic science to problems of production optimization and conservation. He is the author of over a hundred articles in scientific journals and book chapters in diverse fields including Agriculture Sciences, Applied Mathematics, Biology, Ecology, Physics and Social Sciences Modelling. Professor Fort has taught several courses in mathematical modelling, complex systems, non-linear dynamics and statistical physics. He has also been collaborating in different projects with national agencies as a senior scientific consultant. 

Descriere

This book provides a unified mathematical framework to simulation, forecasting, and management across engineering, economic, and environmental fields. An essential resource for researchers, quantitative analysts, and advanced students in complexity science, evolutionary economics, quantitative finance, and ecological modeling.