Reasoning About the Reliability of Multi-version, Diverse Real-Time Systems

A. Burns, B. Littlewood
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引用次数: 14

Abstract

This paper is concerned with the development of reliable real-time systems for use in high integrity applications. It advocates the use of diverse replicated channels, but does not require the dependencies between the channels to be evaluated. Rather it develops and extends the approach of Little wood and Rush by (for general systems) by investigating a two channel system in which one channel, A, is produced to a high level of reliability (i.e. has a very low failure rate), while the other, B, employs various forms of static analysis to sustain an argument that it is perfect (i.e. it will never miss a deadline). The first channel is fully functional, the second contains a more restricted computational model and contains only the critical computations. Potential dependencies between the channels (and their verification) are evaluated in terms of aleatory and epistemic uncertainty. At the aleatory level the events ''A fails" and ''B is imperfect" are independent. Moreover, unlike the general case, independence at the epistemic level is also proposed for common forms of implementation and analysis for real-time systems and their temporal requirements (deadlines). As a result, a systematic approach is advocated that can be applied in a real engineering context to produce highly reliable real-time systems, and to support numerical claims about the level of reliability achieved.
多版本、多样化实时系统可靠性分析
本文关注的是在高完整性应用中开发可靠的实时系统。它提倡使用多种复制通道,但不需要评估通道之间的依赖关系。相反,它发展并扩展了Little wood和Rush的方法(对于一般系统),通过调查一个双通道系统,其中一个通道a产生了高水平的可靠性(即具有非常低的故障率),而另一个通道B采用各种形式的静态分析来维持它是完美的(即它永远不会错过最后期限)的论点。第一个通道是全功能的,第二个通道包含一个更受限制的计算模型,并且只包含关键的计算。通道之间的潜在依赖关系(及其验证)根据选择性和认知不确定性进行评估。在选择性层面上,事件“A失败”和“B不完美”是独立的。此外,与一般情况不同的是,对于实时系统及其时间需求(截止日期)的常见实现和分析形式,也提出了认识层面的独立性。因此,提倡一种系统的方法,可以在实际工程环境中应用,以产生高度可靠的实时系统,并支持关于实现可靠性水平的数值声明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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