Audio-domain position-independent backdoor attack via unnoticeable triggers
Cong Shi, Tianfang Zhang, Zhuohang Li, Huy Phan, Tianming Zhao, Yan Wang, Jian Liu, Bo Yuan, Yingying Chen
摘要
Deep learning models have become key enablers of voice user interfaces. With the growing trend of adopting outsourced training of these models, backdoor attacks, stealthy yet effective training-phase attacks, have gained increasing attention. They inject hidden trigger patterns through training set poisoning and overwrite the model's predictions in the inference phase. Research in backdoor attacks has been focusing on image classification tasks, while there have been few studies in the audio domain. In this work, we explore the severity of audio-domain backdoor attacks and demonstrate their feasibility under practical scenarios of voice user interfaces, where an adversary injects (plays) an unnoticeable audio trigger into live speech to launch the attack. To realize such attacks, we consider jointly optimizing the audio trigger and the target model in the training phase, deriving a position-independent, unnoticeable, and robust audio trigger. We design new data poisoning techniques and penalty-based algorithms that inject the trigger into randomly generated temporal positions in the audio input during training, rendering the trigger resilient to any temporal position variations. We further design an environmental sound mimicking technique to make the trigger resemble unnoticeable situational sounds and simulate played over-the-air distortions to improve the trigger's robustness during the joint optimization process. Extensive experiments on two important applications (i.e., speech command recognition and speaker recognition) demonstrate that our attack can achieve an average success rate of over 99% under both digital and physical attack settings.
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引用它的顶会 Paper13
- FlowMur: A Stealthy and Practical Audio Backdoor Attack with Limited KnowledgeJiahe Lan, Jie Wang, Baochen Yan, Zheng Yan 等S&P 2024 · 被引用 23 次
- MASTERKEY: Practical Backdoor Attack Against Speaker Verification SystemsHanqing Guo, Xun Chen, Junfeng Guo, Li Xiao 等MobiCom 2023 · 被引用 14 次
- CSTAR: Towards Compact and Structured Deep Neural Networks with Adversarial RobustnessHuy Phan, Miao Yin, Yang Sui, Bo Yuan 等AAAI 2023 · 被引用 10 次
- Distributed Backdoor Attacks on Federated Graph Learning and Certified DefensesYuxin Yang, Qiang Li, Jinyuan Jia, Yuan Hong 等CCS 2024 · 被引用 8 次
- Inaudible Backdoor Attack via Stealthy Frequency Trigger Injection in Audio SpectrogramTianfang Zhang, Huy Phan, Zijie Tang, Cong Shi 等MobiCom 2024 · 被引用 8 次
它引用的顶会 Paper9
- Towards Evaluating the Robustness of Neural NetworksNicholas Carlini, David A. WagnerS&P 2017 · 被引用 9,786 次
- Neural Cleanse: Identifying and Mitigating Backdoor Attacks in Neural NetworksBolun Wang, Yuanshun Yao, Shawn Shan, Huiying Li 等S&P 2019 · 被引用 1,801 次
- Hidden Trigger Backdoor AttacksAniruddha Saha, Akshayvarun Subramanya, Hamed PirsiavashAAAI 2020 · 被引用 743 次
- Input-Aware Dynamic Backdoor AttackTuan Anh Nguyen, Anh Tuan TranNeurIPS 2020 · 被引用 601 次
- Who is Real Bob? Adversarial Attacks on Speaker Recognition SystemsGuangke Chen, Sen Chen, Lingling Fan, Xiaoning Du 等S&P 2021 · 被引用 239 次
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