流量限制授权的演算

Owen Arden, A. Myers
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引用次数: 21

摘要

实际应用程序通常基于动态计算做出授权决策。动态计算权限的推理是具有挑战性的。如果攻击者可以不恰当地影响授权计算,系统的完整性可能会受到损害。机密性也可能因授权而受到损害,因为授权决策通常基于成员列表和密码等敏感数据。以前的正式授权模型没有完全解决允许信任关系更改的安全问题,这限制了它们推断来自动态计算的权限的能力。我们的目标是构建一种不违反机密性或完整性的动态授权机制。我们介绍了流量限制授权演算(flow - limited Authorization Calculus, FLAC),它既是一种简单的、表达性的动态授权推理模型,也是一种用于安全实现各种授权机制的信息流控制语言。FLAC结合了之前两个模型的见解:它扩展了依赖核心演算,并使用流量限制授权模型实现的功能。FLAC提供了强大的端到端信息安全保证,即使是那些包含和实现丰富动态授权机制的程序也是如此。这些保证包括不干扰和健壮的解密,防止攻击者以未经授权的方式影响信息披露。我们正式证明了所有FLAC程序的这些安全性质,并通过几个例子探讨了FLAC的可表达性。
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A Calculus for Flow-Limited Authorization
Real-world applications routinely make authorization decisions based on dynamic computation. Reasoning about dynamically computed authority is challenging. Integrity of the system might be compromised if attackers can improperly influence the authorizing computation. Confidentiality can also be compromised by authorization, since authorization decisions are often based on sensitive data such as membership lists and passwords. Previous formal models for authorization do not fully address the security implications of permitting trust relationships to change, which limits their ability to reason about authority that derives from dynamic computation. Our goal is a way to construct dynamic authorization mechanisms that do not violate confidentiality or integrity. We introduce the Flow-Limited Authorization Calculus (FLAC), which is both a simple, expressive model for reasoning about dynamic authorization and also an information flow control language for securely implementing various authorization mechanisms. FLAC combines the insights of two previous models: it extends the Dependency Core Calculus with features made possible by the Flow-Limited Authorization Model. FLAC provides strong end-to-end information security guarantees even for programs that incorporate and implement rich dynamic authorization mechanisms. These guarantees include noninterference and robust declassification, which prevent attackers from influencing information disclosures in unauthorized ways. We prove these security properties formally for all FLAC programs and explore the expressiveness of FLAC with several examples.
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