Genetic Programming for Image Classification

£129.50

Genetic Programming for Image Classification

An Automated Approach to Feature Learning

Artificial intelligence

Authors: Ying Bi, Bing Xue, Mengjie Zhang

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Collection: Adaptation, Learning, and Optimization

Language: English

Published by: Springer

Published on: 8th February 2021

Format: LCP-protected ePub

Size: 37 Mb

ISBN: 9783030659271


Introduction

This book offers several new GP approaches to feature learning for image classification. Image classification is an important task in computer vision and machine learning with a wide range of applications. Feature learning is a fundamental step in image classification, but it is difficult due to the high variations of images. Genetic Programming (GP) is an evolutionary computation technique that can automatically evolve computer programs to solve any given problem. This is an important research field of GP and image classification. No book has been published in this field.

Techniques and Applications

This book shows how different techniques, e.g., image operators, ensembles, and surrogate, are proposed and employed to improve the accuracy and/or computational efficiency of GP for image classification. The proposed methods are applied to many different image classification tasks, and the effectiveness and interpretability of the learned models will be demonstrated.

Target Audience

This book is suitable as a graduate and postgraduate level textbook in artificial intelligence, machine learning, computer vision, and evolutionary computation.

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