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portada Structural Design and Optimization of Lifting Self-forming GFRP Elastic Gridshells based on Machine Learning
Type
Physical Book
Publisher
Collection
Digital Frontiers in Buildings and Infrastructure
Year
2025
Pages
212
Format
Hardcover
Dimensions
23.4x15.6 cm
ISBN13
9781032901206

Structural Design and Optimization of Lifting Self-forming GFRP Elastic Gridshells based on Machine Learning

Farzad Pour Rahimian;Soheila Kookalani;Hamidreza Alavi (Author) · Routledge · Hardcover

Structural Design and Optimization of Lifting Self-forming GFRP Elastic Gridshells based on Machine Learning - Farzad Pour Rahimian;Soheila Kookalani;Hamidreza Alavi

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Synopsis "Structural Design and Optimization of Lifting Self-forming GFRP Elastic Gridshells based on Machine Learning"

This book aims to develop structural design and optimization methods of lifting self-forming Glass fiber reinforced polymer (GFRP) elastic gridshells based on machine learning (ML).

Structural Design and Optimization of Lifting Self-forming GFRP Elastic Gridshells based on Machine Learning presents the algorithms of ML that can be used for the structural design and optimization of GFRP elastic gridshells, including linear regression, ridge regression, K-nearest neighbors, decision tree, random forest, AdaBoost, XGBoost, artificial neural network, support vector machine (SVM), and six enhanced forms of SVM. It also introduces interpretable ML approaches, including partial dependence plot, accumulated local effects, and SHaply Additive exPlanations (SHAP). Also, several methods for developing ML algorithms, including K-fold cross-validation (CV), Taguchi, a technique for order preference by similarity to ideal solution (TOPSIS), and multi-objective particle swarm optimization (MOPSO), are proposed. These algorithms are implemented to improve the applications of gridshell structures using a comprehensive representation of ML models. This research introduces novel frameworks for shape prediction, form-finding, structural performance assessment, and shape optimization of lifting self-forming GFRP elastic gridshells using ML methods. The book will be of interest to researchers and academics interested in advanced design methods and ML technology in architecture, engineering and construction fields.

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