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This publication is protected and available only for logged users.

Title: Research on the Accuracy of Automatic Vision Algorithms for Classifying Traffic Lights

Creator:

Piotr GÓRAL

Type:

artykuł

Alternative title:

Badania dokładności automatycznych algorytmów wizyjnych klasyfikujących światła sygnalizacji drogowej

Contributor:

Agata ŚWIEREK, Karol PINIARSKI, Kamil KONIAK, Bogusław KOWALSKI

Abstract:

This article presents research concerning the recognition of road traffic lights. Initially, vision algorithms were analysed regarding their suitability for implementation in vehicle control systems dedicated to individuals with specific communication needs. The paper presents the results of experimental studies on a vision system for recognising traffic lights, conducted using convolutional neural networks (CNNs). For the experiment, a custom database of traffic light images was prepared. This database was utilised to train a selected Xception CNN model and for processing by a classic algorithm based on colour analysis in the HSV colour space. The obtained classification accuracy results, reaching 98.75%, could serve as a 'green light' for implementing the developed technology to assist driving. The research findings may also find application in driver assistance systems, with particular attention given to the mobility of people with specific needs, such as those with visual impairments.

Place of publishing:

Warszawa

Publisher:

Wojskowa Akademia Techniczna

Date created:

2010 r.0

Date submitted:

2024-11-30

Date accepted:

2025-05-29

Date issued:

2025-06-30

Extent:

B5

Identifier:

oai:ribes-88.man.poznan.pl:2737

Call number:

doi:10.5604/01.3001.0055.1527

Electronic ISSN:

2720-5266

Print ISSN:

2081-5891

Language:

angielski

License:

click here to follow the link

Rights holder:

Wojskowa Akademia Techniczna

Starting page:

65

Ending page:

79

Volume:

16

Journal:

PROMECH

Keywords:

automation and robotics, vision system, convolutional neural network, single-board computer, mobility of people with disabilities

Object collections:

Last modified:

Oct 17, 2025

In our library since:

Oct 17, 2025

Number of object content hits:

0

All available object's versions:

https://ribes-88.man.poznan.pl/publication/3078

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