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Backdoors: Definition, Deniability and Detection

机译:返回户:定义,可分解和检测

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摘要

Detecting backdoors is a difficult task; automating that detection process is equally challenging. Evidence for these claims lie in both the lack of automated tooling, and the fact that the vast majority of real-world backdoors are still detected by labourious manual analysis. The term backdoor, casually used in both the literature and the media, does not have a concrete or rigorous definition. In this work we provide such a definition. Further, we present a framework for reasoning about backdoors through four key components, which allows them to be modelled succinctly and provides a means of rigorously defining the process of their detection. Moreover, we introduce the notion of deniability in regard to backdoor implementations which permits reasoning about the attribution and accountability of backdoor implementers. We show our framework is able to model eleven, diverse, real-world backdoors, and one, more complex backdoor from the literature, and, in doing so, provides a means to reason about how they can be detected and their deniability. Further, we demonstrate how our framework can be used to decompose backdoor detection methodologies, which serves as a basis for developing future backdoor detection tools, and shows how current state-of-the-art approaches consider neither a sound nor complete model.
机译:检测到后门是一项艰巨的任务;自动化该检测过程同样挑战。这些索赔的证据既缺乏自动化工具,也仍然通过劳动手动分析仍然检测到绝大多数现实世界的后门。术语后门,随便用于文献和媒体,没有具体或严谨的定义。在这项工作中,我们提供了这样的定义。此外,我们通过四个关键组件提出了一个关于后门推理的框架,这允许它们简洁地建模并提供一种严格地定义其检测过程的方法。此外,我们介绍了对后门实施方面的概念概念,这允许推理后门实施者的归属和问责制。我们展示我们的框架能够在文献中展示110多个,多样化,真实的背部,以及一个更复杂的后门,而且,在这样做,提供了一种推理如何检测到它们的方法以及它们的赋予。此外,我们展示了我们的框架如何用于分解后门检测方法,该方法是发展未来后门检测工具的基础,并展示了当前最先进的方法既不考虑声音也不完整的模型。

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