Turkish Journal of Computer and Mathematics Education
Journal license

Journal

Turkish Journal of Computer and Mathematics Education


Volume
& Issue

Volume 11, Issue 3


Published
on


Pages

1638-1643


DOI

Article

Multi-traffic Scene Perception Model using Different Machine Learning Classifiers


Authors

N. Rajesh Affiliation:
Department of CSE, SreeDatthaInstitute of Engineering and Science, Hyderabad, India
, L. Prasanna Lakshmi Affiliation:
Department of CSE, SreeDattha Institute of Engineering and Science, Hyderabad, India
and A. Mamatha Affiliation:
Department of CSE, SreeDatthaInstitute of Engineering and Science, Hyderabad, India


Abstract

Traffic accidents are particularly serious on a rainy day, a dark night, an overcast and/or rainy night, a foggy day, and many other times with low visibility conditions. Present vision driver assistance systems are designed to perform under good-natured weather conditions. Classification is a methodology to identify the type of optical characteristics for vision enhancement algorithms to make them more efficient. To improve machine vision in bad weather situations, a multi-class weather classification method is presented based on multiple weather features and supervised learning. First, underlying visual features are extracted from multi-traffic scene images, and then the feature was expressed as an eight-dimensions feature matrix. Second, five supervised learning algorithms are used to train classifiers. The analysis shows that extracted features can accurately describe the image semantics, and the classifiers have high recognition accuracy rate and adaptive ability. The proposed method provides the basis for further enhancing the detection of anterior vehicle detection during nighttime illumination changes, as well as enhancing the driver's field of vision on a foggy day


Keywords

Supervised learning models, traffic scene perception, image enhancement, image denoising, histogram


Citation

Rajesh, N., Prasanna Lakshmi, L., & Mamatha, A. (2020). Multi-traffic scene perception model using different machine learning classifiers. Turkish Journal of Computer and Mathematics Education, 11(3), 1638–1643.

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