Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development

— The difficulties to drive away the durian farm threatens animals such as wild boars, monkeys, foxes, and squirrels during nighttime often experienced by durian farmers. Therefore, the Pro Durian application is proposed that allows farmers to identify durian threats through a camera phone with...

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Main Authors: Yusof, Aiman, Kamarudin, Noraziahtulhidayu, Al-Emad, Nabil Ali, Sapuan, Khusairi
Format: Article
Language:en
Published: IIETA 2023
Subjects:
Online Access:http://eprints.uthm.edu.my/9097/1/J15817_93d696d741ce66312d4270d55ad734db.pdf
http://eprints.uthm.edu.my/9097/
https://doi.org/10.46338/ijetae0223_02
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_version_ 1833418856570290176
author Yusof, Aiman
Kamarudin, Noraziahtulhidayu
Al-Emad, Nabil Ali
Sapuan, Khusairi
author_facet Yusof, Aiman
Kamarudin, Noraziahtulhidayu
Al-Emad, Nabil Ali
Sapuan, Khusairi
author_sort Yusof, Aiman
building UTHM Library
collection Institutional Repository
content_provider Universiti Tun Hussein Onn Malaysia
content_source UTHM Institutional Repository
continent Asia
country Malaysia
description — The difficulties to drive away the durian farm threatens animals such as wild boars, monkeys, foxes, and squirrels during nighttime often experienced by durian farmers. Therefore, the Pro Durian application is proposed that allows farmers to identify durian threats through a camera phone with an alert feature activation when the system detects an animal to drive away those animals. The application implements a deep learning algorithm of Convolutional Neural Network (CNN)-YOLO3in order to receive the best output results in identifying the different datasets of durian farm threats. The classification accuracies reached 80% in detecting the animal’s images.
format Article
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institution Universiti Tun Hussein Onn Malaysia
language en
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publisher IIETA
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spelling my.uthm.eprints-90972023-07-03T02:25:36Z http://eprints.uthm.edu.my/9097/ Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development Yusof, Aiman Kamarudin, Noraziahtulhidayu Al-Emad, Nabil Ali Sapuan, Khusairi T Technology (General) — The difficulties to drive away the durian farm threatens animals such as wild boars, monkeys, foxes, and squirrels during nighttime often experienced by durian farmers. Therefore, the Pro Durian application is proposed that allows farmers to identify durian threats through a camera phone with an alert feature activation when the system detects an animal to drive away those animals. The application implements a deep learning algorithm of Convolutional Neural Network (CNN)-YOLO3in order to receive the best output results in identifying the different datasets of durian farm threats. The classification accuracies reached 80% in detecting the animal’s images. IIETA 2023 Article PeerReviewed text en http://eprints.uthm.edu.my/9097/1/J15817_93d696d741ce66312d4270d55ad734db.pdf Yusof, Aiman and Kamarudin, Noraziahtulhidayu and Al-Emad, Nabil Ali and Sapuan, Khusairi (2023) Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development. International Journal of Emerging Technology and Advanced Engineering, 13 (2). pp. 8-15. ISSN 2250-2459 https://doi.org/10.46338/ijetae0223_02
spellingShingle T Technology (General)
Yusof, Aiman
Kamarudin, Noraziahtulhidayu
Al-Emad, Nabil Ali
Sapuan, Khusairi
Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development
title Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development
title_full Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development
title_fullStr Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development
title_full_unstemmed Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development
title_short Durian Farm Threats Identification through Convolution Neural Networks and Multimedia Mobile Development
title_sort durian farm threats identification through convolution neural networks and multimedia mobile development
topic T Technology (General)
url http://eprints.uthm.edu.my/9097/1/J15817_93d696d741ce66312d4270d55ad734db.pdf
http://eprints.uthm.edu.my/9097/
https://doi.org/10.46338/ijetae0223_02
url_provider http://eprints.uthm.edu.my/