Evolving texture image descriptors using a multitree genetic programming representation

Published: 2017, Last Modified: 02 Oct 2024GECCO (Companion) 2017EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: Image descriptors play very important roles in a wide range of applications in computer vision and pattern recognition. In this paper, a multitree genetic programming method to automatically evolve image descriptors for multiclass texture image classification task is proposed. Instead of using domain knowledge, the proposed method uses only a few instances of each class to automatically identify a set of features that are distinctive between the instances of different classes. The results on seven texture classification datasets show significant, or comparable, performance has been achieved by the proposed method compared with the baseline method and six state-of-the-art methods.
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