A Review of Detection and Removal of Raindrops in Automotive Vision Systems

Author:

Hamzeh YazanORCID,Rawashdeh Samir A.ORCID

Abstract

Research on the effect of adverse weather conditions on the performance of vision-based algorithms for automotive tasks has had significant interest. It is generally accepted that adverse weather conditions reduce the quality of captured images and have a detrimental effect on the performance of algorithms that rely on these images. Rain is a common and significant source of image quality degradation. Adherent rain on a vehicle’s windshield in the camera’s field of view causes distortion that affects a wide range of essential automotive perception tasks, such as object recognition, traffic sign recognition, localization, mapping, and other advanced driver assist systems (ADAS) and self-driving features. As rain is a common occurrence and as these systems are safety-critical, algorithm reliability in the presence of rain and potential countermeasures must be well understood. This survey paper describes the main techniques for detecting and removing adherent raindrops from images that accumulate on the protective cover of cameras.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Graphics and Computer-Aided Design,Computer Vision and Pattern Recognition,Radiology Nuclear Medicine and imaging

Cited by 14 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Panoptic Water Surface Visual Perception for USVs Using Monocular Camera Sensor;IEEE Sensors Journal;2024-08-01

2. Evolutionary Image Quality Monitoring for ADAS under Adverse Weather;2024 IEEE Intelligent Vehicles Symposium (IV);2024-06-02

3. Impact of Raindrops on Camera-Based Detection in Software-Defined Vehicles;2024 IEEE International Conference on Mobility, Operations, Services and Technologies (MOST);2024-05-01

4. DALib: A Curated Repository of Libraries for Data Augmentation in Computer Vision;Journal of Imaging;2023-10-20

5. LSVL: Large-scale season-invariant visual localization for UAVs;Robotics and Autonomous Systems;2023-10

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