SoilingNet: Soiling Detection on Automotive Surround-View Cameras

May 04, 2019 Β· Declared Dead Β· πŸ› International Conference on Intelligent Transportation Systems

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Authors Michal Uricar, Pavel Krizek, Ganesh Sistu, Senthil Yogamani arXiv ID 1905.01492 Category cs.CV: Computer Vision Cross-listed cs.AI, cs.LG, cs.RO, stat.ML Citations 55 Venue International Conference on Intelligent Transportation Systems Last Checked 5 months ago
Abstract
Cameras are an essential part of sensor suite in autonomous driving. Surround-view cameras are directly exposed to external environment and are vulnerable to get soiled. Cameras have a much higher degradation in performance due to soiling compared to other sensors. Thus it is critical to accurately detect soiling on the cameras, particularly for higher levels of autonomous driving. We created a new dataset having multiple types of soiling namely opaque and transparent. It will be released publicly as part of our WoodScape dataset \cite{yogamani2019woodscape} to encourage further research. We demonstrate high accuracy using a Convolutional Neural Network (CNN) based architecture. We also show that it can be combined with the existing object detection task in a multi-task learning framework. Finally, we make use of Generative Adversarial Networks (GANs) to generate more images for data augmentation and show that it works successfully similar to the style transfer.
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