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Estimating Ore Grade Using Evolutionary Machine Learning Models - 2023 ed.

By: (Author) Maliheh Abbaszadeh , (Author) Mohammad Ehteram , (Author) Saeed Soltani-Mohammadi , (Author) Zohreh Sheikh Khozani

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Ksh 21,600.00

Format: Hardback or Cased Book

ISBN-10: 9811981051

ISBN-13: 9789811981050

Edition: 2023 ed.

Publisher: Springer Verlag, Singapore

Imprint: Springer Verlag, Singapore

Country of Manufacture: GB

Country of Publication: GB

Publication Date: Dec 27th, 2022

Print length: 101 Pages

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This book examines the abilities of new machine learning models for predicting ore grade in mining engineering. In this book, the author discusses the new concepts in mining engineering, such as uncertainty in ore grade modeling. In the book, readers learn how to construct advanced machine learning models for estimating ore grade.

Explains the importance of ore grade estimation.- Reviews machine learning models for ore grade estimation.- Explains the structure of different kinds of machine learning models.- Explains different training algorithms and optimization algorithms. This chapter also explains the structure of evolutionary machine learning models.- Explains the Bayesian model averaging and multilayer perceptron networks for estimating AL2O3 grade in a mine.- Explains the structure of inclusive multiple models and optimized radial basis function neural networks for estimating Sio2 grade in a mine.- Explains the application of hybrid kriging and extreme learning machine models for estimating copper ore grade in a mine.- Explains the application of optimized group machine data handling, support vector machines, and Adaptive neuro-fuzzy interface systems for estimating iron ore grade in mines.- Presents the conclusion, general comments, and suggestions for the next books.


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