SOTAVerified

Adversarial Attack

An Adversarial Attack is a technique to find a perturbation that changes the prediction of a machine learning model. The perturbation can be very small and imperceptible to human eyes.

Source: Recurrent Attention Model with Log-Polar Mapping is Robust against Adversarial Attacks

Papers

Showing 12511300 of 1808 papers

TitleStatusHype
Sparse and Imperceptible Adversarial Attack via a Homotopy AlgorithmCode0
Transferable Adversarial Examples for Anchor Free Object Detection0
PDPGD: Primal-Dual Proximal Gradient Descent Adversarial AttackCode0
Dynamically Disentangling Social Bias from Task-Oriented Representations with Adversarial AttackCode0
Defending Pre-trained Language Models from Adversarial Word Substitutions Without Performance SacrificeCode0
Rethinking Noisy Label Models: Labeler-Dependent Noise with Adversarial Awareness0
Reducing DNN Properties to Enable Falsification with Adversarial AttacksCode0
Adversarial Attack Framework on Graph Embedding Models with Limited Knowledge0
Adversarial Attack Driven Data Augmentation for Accurate And Robust Medical Image Segmentation0
Adversarial Attacks and Mitigation for Anomaly Detectors of Cyber-Physical Systems0
Local Aggressive Adversarial Attacks on 3D Point CloudCode0
Poisoning MorphNet for Clean-Label Backdoor Attack to Point Clouds0
Automated Decision-based Adversarial Attacks0
Self-Supervised Adversarial Example Detection by Disentangled Representation0
Attack-agnostic Adversarial Detection on Medical Data Using Explainable Machine LearningCode0
A Perceptual Distortion Reduction Framework: Towards Generating Adversarial Examples with High Perceptual Quality and Attack Success Rate0
GasHis-Transformer: A Multi-scale Visual Transformer Approach for Gastric Histopathological Image Detection0
AdvHaze: Adversarial Haze Attack0
Delving into Data: Effectively Substitute Training for Black-box Attack0
Influence Based Defense Against Data Poisoning Attacks in Online Learning0
Towards Adversarial Patch Analysis and Certified Defense against Crowd CountingCode0
Learning Transferable 3D Adversarial Cloaks for Deep Trained DetectorsCode0
Robust Certification for Laplace Learning on Geometric Graphs0
Performance Evaluation of Adversarial Attacks: Discrepancies and Solutions0
Adversarial Diffusion Attacks on Graph-based Traffic Prediction ModelsCode0
Best Practices for Noise-Based Augmentation to Improve the Performance of Deployable Speech-Based Emotion Recognition Systems0
Fashion-Guided Adversarial Attack on Person SegmentationCode0
Mitigating Adversarial Attack for Compute-in-Memory Accelerator Utilizing On-chip Finetune0
Distributed Estimation over Directed Graphs Resilient to Sensor Spoofing0
Improving Robustness of Deep Reinforcement Learning Agents: Environment Attack based on the Critic NetworkCode0
Semantically Stealthy Adversarial Attacks against Segmentation Models0
Evaluating Neural Model Robustness for Machine Comprehension0
Statistical inference for individual fairnessCode0
Robust Reinforcement Learning under model misspecificationCode0
Adversarial Attacks on Deep Learning Based mmWave Beam Prediction in 5G and Beyond0
Vulnerability of Appearance-based Gaze Estimation0
Grey-box Adversarial Attack And Defence For Sentiment ClassificationCode0
TextFlint: Unified Multilingual Robustness Evaluation Toolkit for Natural Language Processing0
Self adversarial attack as an augmentation method for immunohistochemical stainings0
LSDAT: Low-Rank and Sparse Decomposition for Decision-based Adversarial Attack0
Boosting Adversarial Transferability through Enhanced Momentum0
SoK: A Modularized Approach to Study the Security of Automatic Speech Recognition SystemsCode0
KoDF: A Large-scale Korean DeepFake Detection Dataset0
Adversarial Attacks on Camera-LiDAR Models for 3D Car Detection0
Towards Robust Speech-to-Text Adversarial Attack0
Generating Unrestricted Adversarial Examples via Three Parameters0
Internal Wasserstein Distance for Adversarial Attack and Defense0
Stochastic-HMDs: Adversarial Resilient Hardware Malware Detectors through Voltage Over-scaling0
Practical Relative Order Attack in Deep RankingCode0
Stabilized Medical Image AttacksCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Xu et al.Attack: PGD2078.68Unverified
23-ensemble of multi-resolution self-ensemblesAttack: AutoAttack78.13Unverified
3TRADES-ANCRA/ResNet18Attack: AutoAttack59.7Unverified
4AdvTraining [madry2018]Attack: PGD2048.44Unverified
5TRADES [zhang2019b]Attack: PGD2045.9Unverified
6XU-NetRobust Accuracy1Unverified
#ModelMetricClaimedVerifiedStatus
13-ensemble of multi-resolution self-ensemblesAttack: AutoAttack51.28Unverified
2multi-resolution self-ensemblesAttack: AutoAttack47.85Unverified