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Analysis of Deep Learning Libraries: Keras, PyTorch, and MXnet | IEEE Conference Publication | IEEE Xplore

Analysis of Deep Learning Libraries: Keras, PyTorch, and MXnet


Abstract:

As many artificial neural libraries are developing the deep learning algorithm and implementing it became accessible to anyone. This study points out the disparity of per...Show More

Abstract:

As many artificial neural libraries are developing the deep learning algorithm and implementing it became accessible to anyone. This study points out the disparity of performance in deep learning models such as convolutional neural networks (CNN) when implemented with different artificial neural libraries. Libraries such as Keras, Pytorch, and MXnet was utilized for each three CNN model then binary image classification was done based on the Dogs vs. Cats dataset from Kaggle. With using 75% of the dataset as the training set and the rest of 25% as a testing set, and as a result, each CNN model gave a different F1 score value and accuracy.
Date of Conference: 25-27 May 2022
Date Added to IEEE Xplore: 30 June 2022
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Conference Location: Las Vegas, NV, USA

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