Fear and Logging in the Internet of Things
Qi Wang, Wajih Ul Hassan, Adam Bates, Carl A. Gunter
摘要
As the Internet of Things (IoT) continues to proliferate, diagnosing incorrect behavior within increasinglyautomated homes becomes considerably more difficult. Devices and apps may be chained together in long sequences of triggeraction rules to the point that from an observable symptom (e.g., an unlocked door) it may be impossible to identify the distantly removed root cause (e.g., a malicious app). This is because, at present, IoT audit logs are siloed on individual devices, and hence cannot be used to reconstruct the causal relationships of complex workflows. In this work, we present ProvThings, a platform-centric approach to centralized auditing in the Internet of Things. ProvThings performs efficient automated instrumentation of IoT apps and device APIs in order to generate data provenance that provides a holistic explanation of system activities, including malicious behaviors. We prototype ProvThings for the Samsung SmartThings platform, and benchmark the efficacy of our approach against a corpus of 26 IoT attacks. Through the introduction of a selective code instrumentation optimization, we demonstrate in evaluation that ProvThings imposes just 5% overhead on physical IoT devices while enabling real time querying of system behaviors, and further consider how ProvThings can be leveraged to meet the needs of a variety of stakeholders in the IoT ecosystem.
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引用它的顶会 Paper42
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- Rethinking Access Control and Authentication for the Home Internet of Things (IoT)Weijia He, Maximilian Golla, Roshni Padhi, Jordan Ofek 等USENIX Security 2018 · 被引用 221 次
它引用的顶会 Paper5
- Security Analysis of Emerging Smart Home ApplicationsEarlence Fernandes, Jaeyeon Jung, Atul PrakashS&P 2016 · 被引用 684 次
- FlowFence: Practical Data Protection for Emerging IoT Application FrameworksEarlence Fernandes, Justin Paupore, Amir Rahmati, Daniel Simionato 等USENIX Security 2016 · 被引用 296 次
- ProTracer: Towards Practical Provenance Tracing by Alternating Between Logging and TaintingShiqing Ma, Xiangyu Zhang, Dongyan XuNDSS 2016 · 被引用 253 次
- Towards Scalable Cluster Auditing through Grammatical Inference over Provenance GraphsWajih Ul Hassan, Mark Lemay, Nuraini Aguse, Adam Bates 等NDSS 2018 · 被引用 157 次
- SoK: Lessons Learned from Android Security Research for Appified Software PlatformsYasemin Acar, Michael Backes, Sven Bugiel, Sascha Fahl 等S&P 2016 · 被引用 101 次
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