Feature extraction analysis, techniques and issues in vehicle types recognition

The Vehicle Type Recognition is one of the applications in the Intelligent Transportation System that has implemented in wide range areas such as intelligent parking systems and automatic toll collection system. The system is recognized and classified the vehicle based on vehicle types such as car,...

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Main Authors: Nor'aqilah, Misman, Suryanti, Awang
Format: Conference or Workshop Item
Language:English
Published: Universiti Malaysia Pahang 2018
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Online Access:http://umpir.ump.edu.my/id/eprint/23035/7/Feature%20Extraction%20Analysis%2C%20Techniques5.pdf
http://umpir.ump.edu.my/id/eprint/23035/
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Institution: Universiti Malaysia Pahang
Language: English
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spelling my.ump.umpir.230352019-07-24T01:54:54Z http://umpir.ump.edu.my/id/eprint/23035/ Feature extraction analysis, techniques and issues in vehicle types recognition Nor'aqilah, Misman Suryanti, Awang QA76 Computer software The Vehicle Type Recognition is one of the applications in the Intelligent Transportation System that has implemented in wide range areas such as intelligent parking systems and automatic toll collection system. The system is recognized and classified the vehicle based on vehicle types such as car, bus and truck classes. Most of the system’s accuracy depends on the features which represent the information from the data and the process of feature extraction whether to use single features extraction technique, a combination of single features techniques or based on deep learning methods. However, this paper focuses on feature extraction technique based on deep learning which is a Convolutional Neural Network. There are issues in the system that limit the capability which caused by overfitting, underfitting and intra-class issues. The intra-class issue occurs due to lack of features data and imbalanced dataset which is used for vehicle type classification. It happens when the recognition is applied to the vehicles with the almost similar appearance of the vehicle structure, for different vehicle type classes. To conclude, this paper discusses the related findings based on feature extraction techniques and issues in Vehicle Type Recognition; and used for a further research study to learn more about deep learning methods and data augmentation technique to improve the vehicle recognition and type classification especially in intra-classes. Universiti Malaysia Pahang 2018-08 Conference or Workshop Item PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/23035/7/Feature%20Extraction%20Analysis%2C%20Techniques5.pdf Nor'aqilah, Misman and Suryanti, Awang (2018) Feature extraction analysis, techniques and issues in vehicle types recognition. In: Proceedings Book: National Conference for Postgraduate Research (NCON-PGR 2018), 28-29 August 2018 , Universiti Malaysia Pahang, Gambang, Pahang. pp. 28-35.. ISBN 978-967-22260-5-5
institution Universiti Malaysia Pahang
building UMP Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Pahang
content_source UMP Institutional Repository
url_provider http://umpir.ump.edu.my/
language English
topic QA76 Computer software
spellingShingle QA76 Computer software
Nor'aqilah, Misman
Suryanti, Awang
Feature extraction analysis, techniques and issues in vehicle types recognition
description The Vehicle Type Recognition is one of the applications in the Intelligent Transportation System that has implemented in wide range areas such as intelligent parking systems and automatic toll collection system. The system is recognized and classified the vehicle based on vehicle types such as car, bus and truck classes. Most of the system’s accuracy depends on the features which represent the information from the data and the process of feature extraction whether to use single features extraction technique, a combination of single features techniques or based on deep learning methods. However, this paper focuses on feature extraction technique based on deep learning which is a Convolutional Neural Network. There are issues in the system that limit the capability which caused by overfitting, underfitting and intra-class issues. The intra-class issue occurs due to lack of features data and imbalanced dataset which is used for vehicle type classification. It happens when the recognition is applied to the vehicles with the almost similar appearance of the vehicle structure, for different vehicle type classes. To conclude, this paper discusses the related findings based on feature extraction techniques and issues in Vehicle Type Recognition; and used for a further research study to learn more about deep learning methods and data augmentation technique to improve the vehicle recognition and type classification especially in intra-classes.
format Conference or Workshop Item
author Nor'aqilah, Misman
Suryanti, Awang
author_facet Nor'aqilah, Misman
Suryanti, Awang
author_sort Nor'aqilah, Misman
title Feature extraction analysis, techniques and issues in vehicle types recognition
title_short Feature extraction analysis, techniques and issues in vehicle types recognition
title_full Feature extraction analysis, techniques and issues in vehicle types recognition
title_fullStr Feature extraction analysis, techniques and issues in vehicle types recognition
title_full_unstemmed Feature extraction analysis, techniques and issues in vehicle types recognition
title_sort feature extraction analysis, techniques and issues in vehicle types recognition
publisher Universiti Malaysia Pahang
publishDate 2018
url http://umpir.ump.edu.my/id/eprint/23035/7/Feature%20Extraction%20Analysis%2C%20Techniques5.pdf
http://umpir.ump.edu.my/id/eprint/23035/
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