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INTELLIGENT AND ADAPTIVE MIXUP TECHNIQUE FOR ADVERSARIAL ROBUSTNESS

  • SUNY Buffalo
  • Indian Institute of Technology Jodhpur

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

8 Scopus citations

Abstract

Deep neural networks are generally trained using large amounts of data to achieve state-of-the-art accuracy in many possible computer vision and image analysis applications ranging from object recognition to natural language processing. It is also claimed that these networks can memorize the data which can be extracted from the network parameters such as weights and gradient information. The adversarial vulnerability of the deep networks is usually evaluated on the unseen test set of the databases. If the network is memorizing the data, then the small perturbation in the training image data should not drastically change its performance. Based on this assumption, we first evaluate the robustness of deep neural networks on small perturbations added in the training images used for learning the parameters of the network. It is observed that, even if the network has seen the images it is still vulnerable to these small perturbations. Further, we propose a novel data augmentation technique to increase the robustness of deep neural networks to such perturbations.

Original languageEnglish
Title of host publication2021 IEEE International Conference on Image Processing, ICIP 2021 - Proceedings
PublisherIEEE Computer Society
Pages824-828
Number of pages5
ISBN (Electronic)9781665441155
DOIs
StatePublished - 2021
Event28th IEEE International Conference on Image Processing, ICIP 2021 - Anchorage, United States
Duration: Sep 19 2021Sep 22 2021

Publication series

NameProceedings - International Conference on Image Processing, ICIP
Volume2021-September
ISSN (Print)1522-4880

Conference

Conference28th IEEE International Conference on Image Processing, ICIP 2021
Country/TerritoryUnited States
CityAnchorage
Period09/19/2109/22/21

Keywords

  • Adversarial perturbations
  • Data augmentation technique
  • Deep networks
  • Object recognition
  • Robustness

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