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Remote Attacks on Speech Recognition Systems Using Sound from Power Supply

Lanqing Yang, Xinqi Chen, Xiangyong Jian, Leping Yang, Yijie Li, Qianfei Ren, Yi-Chao Chen, Guangtao Xue, Xiaoyu Ji

2023Year
3Top-tier citations

Abstract

Speech recognition (SR) systems are used on smartphones and speakers to make inquiries, compose emails, and initiate phone calls. However, they also impose a severe security risk. Researchers have demonstrated that the introduction of certain sounds can threaten the security of SR systems. Nonetheless, most of those methods require that the attacker approach within a short distance of the victim, thereby limiting the applicability of such schemes. Other researchers have attacked SR systems remotely using peripheral devices (e.g., lasers); however, those methods require line-of-sight access and an always-on speaker in the vicinity of the victim. To the best of our knowledge, this paper presents the first-ever scheme, named SINGATTACK, in which SR systems are manipulated by human-like sounds generated in the switching mode power supply of the victim's device. The fact that attack signals are transmitted via the power grid enables long-range attacks on existing SR systems. In experiments on ten SR systems, SINGATTACK achieved Mel-Cepstral Distortion of 7.8 from an attack initiated at a distance of 23m.

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