Nighttime Vehicle Detection and Tracking with Occlusion Handling by Pairing Headlights and Taillights

Author:

Pham Tuan-Anh,Yoo Myungsik

Abstract

In recent years, vision-based vehicle detection has received considerable attention in the literature. Depending on the ambient illuminance, vehicle detection methods are classified as daytime and nighttime detection methods. In this paper, we propose a nighttime vehicle detection and tracking method with occlusion handling based on vehicle lights. First, bright blobs that may be vehicle lights are segmented in the captured image. Then, a machine learning-based method is proposed to classify whether the bright blobs are headlights, taillights, or other illuminant objects. Subsequently, the detected vehicle lights are tracked to further facilitate the determination of the vehicle position. As one vehicle is indicated by one or two light pairs, a light pairing process using spatiotemporal features is applied to pair vehicle lights. Finally, vehicle tracking with occlusion handling is applied to refine incorrect detections under various traffic situations. Experiments on two-lane and four-lane urban roads are conducted, and a quantitative evaluation of the results shows the effectiveness of the proposed method.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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1. Computing‐efficient video analytics for nighttime traffic sensing;Computer-Aided Civil and Infrastructure Engineering;2024-06-27

2. CNN Combined With a Prior Knowledge-based Candidate Search and Diffusion Method for Nighttime Vehicle Detection;International Journal of Control, Automation and Systems;2024-03

3. Image Quality Analysis and Verification for Vehicle Photos Using Deep Learning;2023 7th International Conference On Computing, Communication, Control And Automation (ICCUBEA);2023-08-18

4. Robust visual detection of brake-lights in front for commercialized dashboard camera;PLOS ONE;2023-08-11

5. Improved Nighttime Traffic Detection Using Day-To-Night Image Transfer;Transportation Research Record: Journal of the Transportation Research Board;2023-05-04

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