Power-Related Side-Channel Attacks using the Android Sensor Framework
Mathias Oberhuber, Martin Unterguggenberger, Lukas Maar, Andreas Kogler, Stefan Mangard
摘要
—Software-based power side-channel attacks are a significant security threat to modern computer systems, enabling adversaries to extract confidential information. Existing attacks typically exploit direct power signals from dedicated interfaces, as demonstrated in the PLATYPUS attack, or power-dependent timing variations, as in the case of the Hertzbleed attack. As access to direct power signals is meanwhile restricted on more and more platforms, an important question is whether other exploitable power-related signals exist beyond timing proxies. In this paper, we show that Android mobile devices expose numerous power-related signals that allow power side-channel attacks. We systematically analyze unprivileged sensors provided by the Android sensor framework on multiple devices and show that these sensors expose parasitic influences of the power consumption. Our results include new insights into Android sensor leakage, particularly a novel leakage primitive: the rotation-dependent power leakage of the geomagnetic rotation vector sensor. We extensively evaluate the exposed sensors for different information leakage types. We compare them with the corresponding ground truth, achieving correlations greater than 0.9 for some of our tested sensors. In extreme cases, we observe not only statistical results but also, e.g., changes in a compass app’s needle by approximately 30° due to CPU stress. Additionally, we evaluate the capabilities of our identified leakage primitives in two case studies: As a remote attacker via the Google Chrome web browser and as a local attacker running inside an installed app. In particular, we present an end-to-end pixel-stealing attack on different Android devices that effectively circumvents the browser’s cross-origin isolation with a leakage rate of 5-10s per pixel. Lastly, we demonstrate a proof-of-concept AES attack, leaking individual key bytes using our newly discovered leakage primitive.
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引用它的顶会 Paper4
- Pixnapping: Bringing Pixel Stealing out of the Stone AgeAlan Wang, Pranav Gopalkrishnan, Yingchen Wang, Christopher W. Fletcher 等CCS 2025 · 被引用 1 次
- ChoiceJacking: Compromising Mobile Devices through Malicious Chargers like a Decade agoFlorian Draschbacher, Lukas Maar, Mathias Oberhuber, Stefan MangardUSENIX Security 2025
- KernelSnitch: Side Channel-Attacks on Kernel Data StructuresLukas Maar, Jonas Juffinger, Thomas Steinbauer, Daniel Gruss 等NDSS 2025
- Scheduled Disclosure: Turning Power into Timing Without Frequency ScalingInwhan Chun, Isabella Siu, Riccardo PaccagnellaS&P 2025
它引用的顶会 Paper14
- Plundervolt: Software-based Fault Injection Attacks against Intel SGXKit Murdock, David F. Oswald, Flavio D. Garcia, Jo Van Bulck 等S&P 2020 · 被引用 369 次
- PLATYPUS: Software-based Power Side-Channel Attacks on x86Moritz Lipp, Andreas Kogler, David F. Oswald, Michael Schwarz 等S&P 2021 · 被引用 242 次
- Charger-Surfing: Exploiting a Power Line Side-Channel for Smartphone Information LeakagePatrick Cronin, Xing Gao, Chengmo Yang, Haining WangUSENIX Security 2021 · 被引用 62 次
- A Large Scale Study of User Behavior, Expectations and Engagement with Android PermissionsWeicheng Cao, Chunqiu Xia, Sai Teja Peddinti, David Lie 等USENIX Security 2021 · 被引用 42 次
- On the effectiveness of mitigations against floating-point timing channelsDavid Kohlbrenner, Hovav ShachamUSENIX Security 2017 · 被引用 40 次
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