Deep Learning Backdoors

July 16, 2020 Β· Declared Dead Β· πŸ› Security and Artificial Intelligence

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Authors Shaofeng Li, Shiqing Ma, Minhui Xue, Benjamin Zi Hao Zhao arXiv ID 2007.08273 Category cs.CR: Cryptography & Security Cross-listed cs.LG Citations 36 Venue Security and Artificial Intelligence Last Checked 6 months ago
Abstract
Intuitively, a backdoor attack against Deep Neural Networks (DNNs) is to inject hidden malicious behaviors into DNNs such that the backdoor model behaves legitimately for benign inputs, yet invokes a predefined malicious behavior when its input contains a malicious trigger. The trigger can take a plethora of forms, including a special object present in the image (e.g., a yellow pad), a shape filled with custom textures (e.g., logos with particular colors) or even image-wide stylizations with special filters (e.g., images altered by Nashville or Gotham filters). These filters can be applied to the original image by replacing or perturbing a set of image pixels.
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