Genetic Programming for Image Classification - Ying Bi, Bing Xue, Mengjie Zhang

Genetic Programming for Image Classification

An Automated Approach to Feature Learning
Buch | Hardcover
XXVIII, 258 Seiten
2021 | 1st ed. 2021
Springer International Publishing (Verlag)
978-3-030-65926-4 (ISBN)
160,49 inkl. MwSt

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

 


Computer Vision and Machine Learning.- Evolutionary Computation and Genetic Programming.- Multi-Layer Representation for Binary Image Classification.- Evolutionary Deep Learning Using GP with Convolution Operators.- GP with Image Descriptors for Learning Global and Local Features.- GP with Image-Related Operators for Feature Learning.- GP for Simultaneous Feature Learning and Ensemble Learning.- Random Forest-Assisted GP for Feature Learning.- Conclusions and Future Directions.

Erscheinungsdatum
Reihe/Serie Adaptation, Learning, and Optimization
Zusatzinfo XXVIII, 258 p. 92 illus., 59 illus. in color.
Verlagsort Cham
Sprache englisch
Maße 155 x 235 mm
Gewicht 600 g
Themenwelt Informatik Theorie / Studium Künstliche Intelligenz / Robotik
Technik
Schlagworte computer vision • evolutionary computation • Feature Construction • feature extraction • Feature learning • Feature Selection • genetic programming • image classification • machine learning • Model Interpretability
ISBN-10 3-030-65926-7 / 3030659267
ISBN-13 978-3-030-65926-4 / 9783030659264
Zustand Neuware
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