Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient
An autonomous car is a one-of-a-kind specimen in today's technology. It is an automatic system in which most of the duties that humans undertake in the car can be done automatically with minimum human supervision for road safety features. Moving automobile detections, on the other hand, are pro...
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Semarak Ilmu Publishing
2023
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Online Access: | http://umpir.ump.edu.my/id/eprint/40947/1/Velocity%20analysis%20on%20moving%20objects%20detection%20using%20multi-scale.pdf http://umpir.ump.edu.my/id/eprint/40947/ https://doi.org/10.37934/aram.109.1.3543 https://doi.org/10.37934/aram.109.1.3543 |
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my.ump.umpir.409472024-05-28T08:09:58Z http://umpir.ump.edu.my/id/eprint/40947/ Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient Yee, Lai Kok Muhammad Syahmi, Mohd Yusoff Ken, Tan Lit Asako, Yutaka Lee, Kee Quen Kang, Hooi Siang Siang, Gan Yee Chuan, Zunliang Tey, Wah Yen Abdul Muhaimin, Zahari Hoo, Kok Chee Q Science (General) QA Mathematics An autonomous car is a one-of-a-kind specimen in today's technology. It is an automatic system in which most of the duties that humans undertake in the car can be done automatically with minimum human supervision for road safety features. Moving automobile detections, on the other hand, are prone to more mistakes and can result in undesirable situations such as minor car wrecks. Moving vehicle identification is now done using high-speed cameras or LiDAR, for example, whereas self-driving cars are produced with deep learning, which requires much larger datasets. As a result, there may be greater space for improvement in the moving vehicle detection model. This research intends to create another moving car recognition model that uses multi-scale feature-based detection to improve the model's accuracy while also determining the maximum speed at which the model can detect moving objects. The recommended methodology was to create a lab-scale model that can be used as a guide for video and image capture on the lab-scale model, as well as the speed of the toy vehicles captured from the Arduino Uno machine before testing the car recognition model. According to the data, Multi-Scale Histogram of Oriented Gradient can recognize more objects than Histogram of Oriented Gradient with higher object identification accuracies and precision. Semarak Ilmu Publishing 2023-09 Article PeerReviewed pdf en cc_by_nc_4 http://umpir.ump.edu.my/id/eprint/40947/1/Velocity%20analysis%20on%20moving%20objects%20detection%20using%20multi-scale.pdf Yee, Lai Kok and Muhammad Syahmi, Mohd Yusoff and Ken, Tan Lit and Asako, Yutaka and Lee, Kee Quen and Kang, Hooi Siang and Siang, Gan Yee and Chuan, Zunliang and Tey, Wah Yen and Abdul Muhaimin, Zahari and Hoo, Kok Chee (2023) Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient. Journal of Advanced Research in Applied Mechanics, 109 (1). pp. 35-43. ISSN 2289-7895. (Published) https://doi.org/10.37934/aram.109.1.3543 https://doi.org/10.37934/aram.109.1.3543 |
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Q Science (General) QA Mathematics Yee, Lai Kok Muhammad Syahmi, Mohd Yusoff Ken, Tan Lit Asako, Yutaka Lee, Kee Quen Kang, Hooi Siang Siang, Gan Yee Chuan, Zunliang Tey, Wah Yen Abdul Muhaimin, Zahari Hoo, Kok Chee Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient |
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An autonomous car is a one-of-a-kind specimen in today's technology. It is an automatic system in which most of the duties that humans undertake in the car can be done automatically with minimum human supervision for road safety features. Moving automobile detections, on the other hand, are prone to more mistakes and can result in undesirable situations such as minor car wrecks. Moving vehicle identification is now done using high-speed cameras or LiDAR, for example, whereas self-driving cars are produced with deep learning, which requires much larger datasets. As a result, there may be greater space for improvement in the moving vehicle detection model. This research intends to create another moving car recognition model that uses multi-scale feature-based detection to improve the model's accuracy while also determining the maximum speed at which the model can detect moving objects. The recommended methodology was to create a lab-scale model that can be used as a guide for video and image capture on the lab-scale model, as well as the speed of the toy vehicles captured from the Arduino Uno machine before testing the car recognition model. According to the data, Multi-Scale Histogram of Oriented Gradient can recognize more objects than Histogram of Oriented Gradient with higher object identification accuracies and precision. |
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Article |
author |
Yee, Lai Kok Muhammad Syahmi, Mohd Yusoff Ken, Tan Lit Asako, Yutaka Lee, Kee Quen Kang, Hooi Siang Siang, Gan Yee Chuan, Zunliang Tey, Wah Yen Abdul Muhaimin, Zahari Hoo, Kok Chee |
author_facet |
Yee, Lai Kok Muhammad Syahmi, Mohd Yusoff Ken, Tan Lit Asako, Yutaka Lee, Kee Quen Kang, Hooi Siang Siang, Gan Yee Chuan, Zunliang Tey, Wah Yen Abdul Muhaimin, Zahari Hoo, Kok Chee |
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Yee, Lai Kok |
title |
Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient |
title_short |
Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient |
title_full |
Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient |
title_fullStr |
Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient |
title_full_unstemmed |
Velocity analysis on moving objects detection using multi-scale histogram of oriented gradient |
title_sort |
velocity analysis on moving objects detection using multi-scale histogram of oriented gradient |
publisher |
Semarak Ilmu Publishing |
publishDate |
2023 |
url |
http://umpir.ump.edu.my/id/eprint/40947/1/Velocity%20analysis%20on%20moving%20objects%20detection%20using%20multi-scale.pdf http://umpir.ump.edu.my/id/eprint/40947/ https://doi.org/10.37934/aram.109.1.3543 https://doi.org/10.37934/aram.109.1.3543 |
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1822924362853908480 |
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13.23648 |