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Hassan Khotanlou

Hassan Khotanlou

Academic rank: Professor
ORCID:
Education: PhD.
ScopusId: 14015911600
HIndex:
Faculty: Faculty of Engineering
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Research

Title
An Empirical Study on Position of the Batch Normalization Layer in Convolutional Neural
Type
Presentation
Keywords
convolutional neural networks; batch normalization
Year
2019
Researchers Moein Hasan ، Hassan Khotanlou

Abstract

In this paper, we have studied how training of the convolutional neural networks (CNNs) can be affected by changing the position of the batch normalization (BN) layer. Three different convolutional neural networks have been chosen for our experiments. These networks are AlexNet, VGG-16, and ResNet- 20. We show that the speed-up provided by the BN algorithm can be further improved by using the BN in positions other than the one suggested by its original paper. Also, we discuss how the BN layer in a certain position can aid the training of one network but not the other. Three different positions for the BN layer have been studied in this research, these positions are: BN layer between the convolution layer and the non-linear activation function, BN layer after the non-linear activation function and finally, the BN layer before each of the convolutional layers.