Bokus
Artificial Intelligence Modeling for Dynamical Problems

Häftad, Engelska, 2027

Artificial Intelligence Modeling for Dynamical Problems

Av Snehashish Chakraverty, Dhabaleswar Mohapatra, Arup Kumar Sahoo

1771 kr

Ej publicerad ännu

Beskrivning
Artificial Intelligence Modeling for Dynamical Problems provides a comprehensive exploration of AI-driven methodologies tailored to address the intricate challenges posed by dynamical systems. The chapters in this book delve into cutting-edge techniques, including scientific machine learning, operator learning, fuzzy logic, and optimization algorithms, highlighting their applications in structural dynamics, fluid dynamics, robotics, and wave dynamics. Readers will gain insights into innovative state-of-the-art approaches such as Physics-Informed Neural Networks (PINNs) for precise navigation and control in autonomous vehicles, convolutional neural networks (CNNs) for frequency dynamics recognition, and data-driven models for market sentiment analysis. Additionally, the book explores the role of uncertainty modeling, statistical inference, and hybrid AI techniques, such as Type-2 fuzzy fractional modeling, in advancing the field of dynamical system analysis. Each chapter combines foundational principles with practical applications, including recent investigations, making it a valuable resource for researchers, practitioners, students of STEM seeking to apply theoretical AI models to real-world dynamical problems.

  • Presents a systematic approach to the AI and machine learning models and techniques, and how they can be applied to analyzing and modeling dynamical systems.
  • Presents advanced techniques such as and physics-informed machine learning, DeepONet, Type-2 fuzzy sets, uncertainty analysis, and lightweight modeling.
  • Provides readers with easy-to-follow examples of generalized systems governed by linear or non-linear differential equations.
  • Presents extensive applications across a variety of research disciplines, including techniques such as deep learning, data fusion, data-driven modeling, and statistical inference in fields such as bioinformatics, robotics, finance, and other engineering topics.
Produktinformation
  • Utgivningsdatum: 2027-04-01
  • Mått: 191 x 235 x undefined mm
  • Format: Häftad
  • Språk: Engelska
  • Antal sidor: 250
  • Förlag: Elsevier Science
  • ISBN: 9780443491344
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