activity
20172024
most citedIn ChatGPT We Trust? Measuring and Characterizing the Reliability of ChatGPT

72 citations · 346 across the 21 of their papers we have counts for

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Showing 2020Show all

10 papers · 1 filter

cs.CR2020

BAAAN: Backdoor Attacks Against Autoencoder and GAN-Based Machine Learning Models

Ahmed Salem, Yannick Sautter, Michael Backes +2

The tremendous progress of autoencoders and generative adversarial networks (GANs) has led to their application to multiple critical tasks, such as fraud detection and sanitized da…

cs.CR2020

Don't Trigger Me! A Triggerless Backdoor Attack Against Deep Neural Networks

Ahmed Salem, Michael Backes, Yang Zhang

Backdoor attack against deep neural networks is currently being profoundly investigated due to its severe security consequences. Current state-of-the-art backdoor attacks require t…

cs.CR2020★ 16 cited

Privacy Analysis of Deep Learning in the Wild: Membership Inference Attacks against Transfer Learning

Yang Zou, Zhikun Zhang, Michael Backes +1

While being deployed in many critical applications as core components, machine learning (ML) models are vulnerable to various security and privacy attacks. One major privacy attack…

cs.LG2020

Membership Leakage in Label-Only Exposures

Zheng Li, Yang Zhang

Machine learning (ML) has been widely adopted in various privacy-critical applications, e.g., face recognition and medical image analysis. However, recent research has shown that M…

cs.CR2020

BadNL: Backdoor Attacks against NLP Models with Semantic-preserving Improvements

Xiaoyi Chen, Ahmed Salem, Dingfan Chen +5

Deep neural networks (DNNs) have progressed rapidly during the past decade and have been deployed in various real-world applications. Meanwhile, DNN models have been shown to be vu…

cs.CR2020

When Machine Unlearning Jeopardizes Privacy

Min Chen, Zhikun Zhang, Tianhao Wang +3

The right to be forgotten states that a data owner has the right to erase their data from an entity storing it. In the context of machine learning (ML), the right to be forgotten r…