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Data Augmentation Using Principal Component Resampling for Image Recognition by Deep Learning

  • Kaunas University of Technology

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

13 Citations (Scopus)

Abstract

Image recognition by deep learning usually requires many sample images to train. In case of a small number of images available for training, data augmentation techniques should be applied. Here we propose a novel image augmentation technique based on a random permutation of coefficients of within-class principal components obtained after applying Principal Component Analysis (PCA). After reconstruction, newly generated surrogate images are employed to train a deep network. In this study, we demonstrated the applicability of our approach on training a custom convolutional neural network using the CIFAR-10 image dataset. The experimental results show an improvement in terms of classification accuracy and classification ambiguity.

Original languageEnglish
Title of host publicationArtificial Intelligence and Soft Computing - 19th International Conference, ICAISC 2020, Proceedings
EditorsLeszek Rutkowski, Rafal Scherer, Marcin Korytkowski, Witold Pedrycz, Ryszard Tadeusiewicz, Jacek M. Zurada
PublisherSpringer Science and Business Media Deutschland GmbH
Pages39-48
Number of pages10
ISBN (Print)9783030615338
DOIs
Publication statusPublished - 2020
Event19th International Conference on Artificial Intelligence and Soft Computing, ICAISC 2020 - Zakopane, Poland
Duration: 12 Oct 202014 Oct 2020

Publication series

NameLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Volume12416 LNAI
ISSN (Print)0302-9743
ISSN (Electronic)1611-3349

Conference

Conference19th International Conference on Artificial Intelligence and Soft Computing, ICAISC 2020
Country/TerritoryPoland
CityZakopane
Period12/10/2014/10/20

Keywords

  • Convolutional neural network
  • Data augmentation
  • Deep learning
  • Image recognition
  • Principal component analysis
  • Small data

ASJC Scopus subject areas

  • Theoretical Computer Science
  • General Computer Science

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