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Perlin Random Erasing for Data Augmentation

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Date

2021

Journal Title

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Volume Title

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Ieee

Open Access Color

Green Open Access

No

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No
Impulse
Top 10%
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Average
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Top 10%

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Abstract

In the last decade, Deep Learning is applied in a wide range of problems with tremendous success. Large data, increased computational resources, and theoretical improvements are main reasons for this success. As the dataset grows, the real-world is better represented, allows developing a model that can generalize. However, creating a labeled dataset is expensive, time-consuming, or sometimes even challenging. Therefore, researchers proposed data augmentation methods to increase dataset size by creating variations of the existing data. This study proposes an extension to Random Erasing data augmentation method by introducing smoothness. The proposed method provides better performance compared to Random Erasing data augmentation method, which is shown using a transfer learning scenario on the UC Merced Land-use image dataset.

Description

Nar, Fatih/0000-0002-3003-8136

Keywords

Data Augmentation, Random Erasing, Deep Learning

Fields of Science

0502 economics and business, 05 social sciences, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

Saran, Murat; Nar, Fatih; Saran, Ayse Nurdan (2021). "Perlin random erasing for data augmentation", SIU 2021 - 29th IEEE Conference on Signal Processing and Communications Applications, Proceedings, 29th IEEE Conference on Signal Processing and Communications Applications, SIU 2021Virtual, Istanbul9 June 2021through 11 June 2021.

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OpenCitations Citation Count
10

Source

29th IEEE Conference on Signal Processing and Communications Applications (SIU) -- JUN 09-11, 2021 -- ELECTR NETWORK

Volume

Issue

Start Page

1

End Page

4
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Citations

CrossRef : 11

Scopus : 16

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Mendeley Readers : 4

SCOPUS™ Citations

16

checked on Feb 23, 2026

Web of Science™ Citations

8

checked on Feb 23, 2026

Page Views

3

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