Journal of Mechanical Engineering Science and Technology
Vol 6, No 1 (2022)

Machine Vision for the Various Road Surface Type Classification Based on Texture Feature

Susi Marianingsih (Faculty of Computer Science and Management, Jayapura University of Science and Technology, 99351, Indonesia)
Widodo Widodo (Unknown)
Marla Sheilamita S. Pieter (Faculty of Computer Science and Management, Jayapura University of Science and Technology, 99351, Indonesia)
Evanita Veronica Manullang (Unknown)
Hendry Y. Nanlohy (Jayapura University of Science and Technology)



Article Info

Publish Date
19 Jul 2022

Abstract

The mechanized ability to specify the way surface type is a piece of key enlightenment for autonomous transportation machine navigation like wheelchairs and smart cars. In the present work, the extracted features from the object are getting based on structure and surface evidence using Gray Level Co-occurrence Matrix (GLCM). Furthermore, K-Nearest Neighbor (K-NN) Classifier was built to classify the road surface image into three classes, asphalt, gravel, and pavement. A comparison of KNN and Naïve Bayes (NB) was used in present study. We have constructed a road image dataset of 450 samples from real-world road images in the asphalt, gravel, and pavement. Experiment result that the classification accuracy using the K-NN classifier is 78%, which is better as compared to Naïve Bayes classifier which has a classification accuracy of 72%. The paving class has the smallest accuracy in both classifier methods. The two classifiers have nearly the same computing time, 3.459 seconds for the KNN Classifier and 3.464 seconds for the Naive Bayes Classifier.

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Journal Info

Abbrev

jmest

Publisher

Subject

Energy Engineering Industrial & Manufacturing Engineering Materials Science & Nanotechnology Mechanical Engineering

Description

Journal of Mechanical Engineering Science and Technology (JMEST) is a peer reviewed, open access journal that publishes original research articles and review articles in all areas of Mechanical Engineering and Basic ...