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Deep Learning For Fluid Simulation And Animation eBook

Fundamentals, Modeling, And Case Studies

by Gilson Antonio Giraldi, Leandro Tavares Da Silva, Antonio Lopes Apolinario Jr. e Liliane Rodrigues De Almeida
language: english
Publisher: Springer International Publishing, November of 2023 ‧
52,99€
47,69€
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Ebook for ADE
This book is an introduction to the use of machine learning and data-driven approaches in fluid simulation and animation, as an alternative to traditional modeling techniques based on partial differential equations and numerical methods - and at a lower computational cost.

This work starts with a brief review of computability theory, aimed to convince the reader - more specifically, researchers of more traditional areas of mathematical modeling - about the power of neural computing in fluid animations. In these initial chapters, fluid modeling through Navier-Stokes equations and numerical methods are also discussed.

The following chapters explore the advantages of the neural networks approach and show the building blocks of neural networks for fluid simulation. They cover aspects related to training data, data augmentation, and testing. 

The volume completes with two case studies, one involving Lagrangian simulation of fluids using convolutional neural networks and the other using Generative Adversarial Networks (GANs) approaches.


Deep Learning For Fluid Simulation And Animation

Fundamentals, Modeling, And Case Studies

by Gilson Antonio Giraldi, Leandro Tavares Da Silva, Antonio Lopes Apolinario Jr. e Liliane Rodrigues De Almeida

Property Description
ISBN: 9783031423338
Publisher: Springer International Publishing
Release Date: November of 2023
Language: English
Format: eBook
File Format and Compatibility:
Collection: Springerbriefs In Mathematics
Categories: eBooks in English > Science > Mathematics
EAN: 9783031423338
Acessibilidade: Ver características de acessibilidade indicadas pelo editor

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