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Universitas Hasanuddin
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Reducing Area Recognition for Vehicle Model Classification using Car’s Front Side

Sutrisno A.

Icoiact 2021 4th International Conference on Information and Communications Technology the Role of AI in Health and Social Revolution in Turbulence Era

Published: 2021Citations: 1

Abstract

A Car Make and Model Recognition (CMMR) system plays an essential role in Intelligent Transport System (ITS) development. The challenge is identifying the features of a car and simplifying the process of a system. This work presents a system that can handle the challenges. This research aims to classify car models based on global features in the car's frontside view image. The dataset used consists of 5 classes spread into 387 images with 312 train data and 75 test data. The method used in feature extraction is the Bag of ORB Feature (BOF) method, which is a combination of the Oriented and Rotated BRIEF (ORB) feature extraction method and the Bag of Visual Word (BOVW) concept. While at the classification stage, it uses the Support Vector Machine (SVM) method. The results show that the proposed approach can overcome the challenges of CMMR with an F1 score for each class of 96.3%, 91.2%, 87.0%, 81.8%, and 85.7%. In addition, the approach of using the car's front-side view image can also increase the system performance with an average increase of 10% than using the whole car image.

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Orb (optics)Sciences
Computer scienceSciences
Feature extractionSciences
Support vector machineSciences
Artificial intelligenceSciences
Process (computing)Sciences
Bag-of-words model in computer visionSciences
Bag-of-words modelSciences
Feature (linguistics)Sciences
Pattern recognition (psychology)Sciences
Class (philosophy)Sciences
Image (mathematics)Sciences
Contextual image classificationSciences
Intelligent transportation systemSciences
Computer visionSciences
Machine learningSciences
Visual WordSciences
Image retrievalSciences
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