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Quantification of information flow in Cyber Physical Systems.

机译:网络物理系统中信息流的量化。

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摘要

In Cyber Physical Systems (CPSs), traditional security mechanisms such as cryptography and access control are not enough to ensure the security of the system since complex interactions between the cyber portion and physical portion happen frequently. In particular, the physical infrastructure is inherently observable; aggregated physical observations can lead to unintended cyber information leakage. Information flow analysis, which aims to control the way information flows among different entities, is better suited for CPSs than the access control security mechanism. However, quantifying information leakage in CPSs can be challenging due to the flow of implicit information between the cyber portion, the physical portion, and the outside world. Within algorithmic theory, the online problem considers inputs that arrive one by one and deals with extracting the algorithmic solution through an advice tape without knowing some parts of the input. This dissertation focuses on statistical methods to quantify information leakage in CPSs due to algorithmic leakages, especially CPSs that allocate constrained resources. The proposed framework is based on the advice tape concept of algorithmically quantifying information leakage and statistical analysis. With aggregated physical observations, the amount of information leakage of the constrained resource due to the cyber algorithm can be quantified through the proposed algorithms. An electric smart grid has been used as an example to develop confidence intervals of information leakage within a real CPS. The characteristic of the physical system, which is represented as an invariant, is also considered and influences the information quantification results. The impact of this work is that it allows the user to express an observer's uncertainty about a secret as a function of the revealed part. Thus, it can be used as an algorithmic design in a CPS to allocate resources while maximizing the uncertainty of the information flow to an observer.
机译:在网络物理系统(CPS)中,传统的安全机制(例如加密和访问控制)不足以确保系统的安全性,因为网络部分和物理部分之间的复杂交互频繁发生。特别是,物理基础结构本质上是可观察的。汇总的物理观测结果可能导致意外的网络信息泄漏。旨在控制信息在不同实体之间流动的方式的信息流分析比访问控制安全性机制更适合CPS。但是,由于隐含信息在网络部分,物理部分和外界之间的流动,因此量化CPS中的信息泄漏可能具有挑战性。在算法理论内,在线问题考虑的是一个到一个的输入,并通过建议磁带提取算法解,而不知道输入的某些部分。本论文着重于统计方法,以量化由于算法泄漏,特别是分配受约束的资源的CPS,导致CPS中的信息泄漏。所提出的框架基于建议带概念,该带概念通过算法对信息泄漏进行量化和统计分析。通过汇总的物理观测,可以通过提出的算法来量化由于网络算法而导致的受限资源的信息泄漏量。电气智能电网已被用作示例来开发真实CPS中信息泄漏的置信区间。还考虑了物理系统的特性(表示为不变),它会影响信息量化结果。这项工作的影响在于,它允许用户根据所显示的部分来表达观察者对秘密的不确定性。因此,它可以用作CPS中的算法设计来分配资源,同时最大程度地增加流向观察者的信息流的不确定性。

著录项

  • 作者

    Feng, Li.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Computer science.;Electrical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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