Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU

Benchmarking; Computer aided instruction; Deep neural networks; Image coding; Large dataset; Learning systems; Neural networks; Data transferring; Data-transmission speed; Hardware selection; Machine learning applications; Neural network model; Object classification; Performance analysis; Processing...

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Main Authors: Asyraaf Jainuddin A.A., Hou Y.C., Baharuddin M.Z., Yussof S.
Other Authors: 57220803880
Format: Conference Paper
Published: Institute of Electrical and Electronics Engineers Inc. 2023
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spelling my.uniten.dspace-253092023-05-29T16:08:02Z Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU Asyraaf Jainuddin A.A. Hou Y.C. Baharuddin M.Z. Yussof S. 57220803880 37067465000 35329255600 16023225600 Benchmarking; Computer aided instruction; Deep neural networks; Image coding; Large dataset; Learning systems; Neural networks; Data transferring; Data-transmission speed; Hardware selection; Machine learning applications; Neural network model; Object classification; Performance analysis; Processing units; Deep learning Deep learning becomes a more popular, widespread, and common tool in almost any task that requires information extraction from a large dataset. Hence, the data transmission speed between the data-gathering devices and processing units can be crucial in hardware selection depending on the machine learning application. Generally, the processing unit is usually centralized, and the data transferring time will increase when the data-gathering devices were installed further away from the processing unit. The work aims to provide the performance analysis on Google's new machine learning hardware called Edge TPU that was created specifically for edge devices. Furthermore, the work also reviewed the different types of deep neural network models as current benchmarks in deep learning were tested with different hardware used in edge applications. The review also discussed the comparison of the performance of the edge device using the deep neural networks in Tensorflow. From the results obtained, the performance of the edge device with the Edge TPU is faster than the device without it. � 2020 IEEE. Final 2023-05-29T08:08:02Z 2023-05-29T08:08:02Z 2020 Conference Paper 10.1109/ICIMU49871.2020.9243367 2-s2.0-85097651125 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85097651125&doi=10.1109%2fICIMU49871.2020.9243367&partnerID=40&md5=6eeda9b1976329af80f39ffb4d74fb3a https://irepository.uniten.edu.my/handle/123456789/25309 9243367 323 328 Institute of Electrical and Electronics Engineers Inc. Scopus
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
description Benchmarking; Computer aided instruction; Deep neural networks; Image coding; Large dataset; Learning systems; Neural networks; Data transferring; Data-transmission speed; Hardware selection; Machine learning applications; Neural network model; Object classification; Performance analysis; Processing units; Deep learning
author2 57220803880
author_facet 57220803880
Asyraaf Jainuddin A.A.
Hou Y.C.
Baharuddin M.Z.
Yussof S.
format Conference Paper
author Asyraaf Jainuddin A.A.
Hou Y.C.
Baharuddin M.Z.
Yussof S.
spellingShingle Asyraaf Jainuddin A.A.
Hou Y.C.
Baharuddin M.Z.
Yussof S.
Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU
author_sort Asyraaf Jainuddin A.A.
title Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU
title_short Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU
title_full Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU
title_fullStr Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU
title_full_unstemmed Performance Analysis of Deep Neural Networks for Object Classification with Edge TPU
title_sort performance analysis of deep neural networks for object classification with edge tpu
publisher Institute of Electrical and Electronics Engineers Inc.
publishDate 2023
_version_ 1806423460271882240
score 13.222552