Are Self-Driving Cars Secure? Evasion Attacks against Deep Neural Networks for Steering Angle Prediction
April 15, 2019 ยท Declared Dead ยท ๐ 2019 IEEE Security and Privacy Workshops (SPW)
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Authors
Alesia Chernikova, Alina Oprea, Cristina Nita-Rotaru, BaekGyu Kim
arXiv ID
1904.07370
Category
cs.LG: Machine Learning
Cross-listed
cs.CR,
stat.ML
Citations
80
Venue
2019 IEEE Security and Privacy Workshops (SPW)
Last Checked
5 months ago
Abstract
Deep Neural Networks (DNNs) have tremendous potential in advancing the vision for self-driving cars. However, the security of DNN models in this context leads to major safety implications and needs to be better understood. We consider the case study of steering angle prediction from camera images, using the dataset from the 2014 Udacity challenge. We demonstrate for the first time adversarial testing-time attacks for this application for both classification and regression settings. We show that minor modifications to the camera image (an L2 distance of 0.82 for one of the considered models) result in mis-classification of an image to any class of attacker's choice. Furthermore, our regression attack results in a significant increase in Mean Square Error (MSE) by a factor of 69 in the worst case.
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