Comparison of Combinations of Data Augmentation Methods and Transfer Learning Strategies in Image Classification Used in Convolution Deep Neural Networks

被引:6
作者
Korzhebin, Timofey A. [1 ]
Egorov, Alexey D. [1 ]
机构
[1] Natl Res Nucl Univ MEPhI, Moscow Engn Phys Inst, Dept Comp Syst & Technol, Moscow, Russia
来源
PROCEEDINGS OF THE 2021 IEEE CONFERENCE OF RUSSIAN YOUNG RESEARCHERS IN ELECTRICAL AND ELECTRONIC ENGINEERING (ELCONRUS) | 2021年
关键词
deep learning; data augmentation; transfer learning; image classification;
D O I
10.1109/ElConRus51938.2021.9396724
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Several studies have already made a comparison of either Data Augmentation methods or Transfer learning strategies in Convolution Deep Neural Networks for Image Classification; however, comparison of combinations of Data Augmentation methods and Transfer learning strategies remains to be accomplished. Combination of Data Augmentation methods with the highest-performing results and Transfer learning strategy with the highest-performing results does not achieve top performing results in total as well. We make the comparison of four Data Augmentation methods, the comparison of four Transfer learning strategies, used on five different image classification models and the comparison of all combinations of them. We use small dataset consists of 40 images for training and finetuning and accuracy as metric. Our research shows that the performance results of a model with combinations of methods and strategies cannot be expected from simple comparisons of parts of this combination.
引用
收藏
页码:479 / 482
页数:4
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