复杂反应系统可重构控制的状态图:一种新的形式化验证方法

S. Dewasurendra
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引用次数: 5

摘要

在复杂的反应系统中,有几种形式可用于规范控制。越来越多的人建议将状态图作为首选语言。在形式验证的背景下,这些形式的局限性已经在一篇随附的论文中讨论过。正式的验证对于以一种简单和安全的方式指定这些系统,维护设计不同阶段的可追溯性,以及分析已定义系统的行为是必要的。当前的通信报告了一种模块化规范和验证基于状态图的控制器的新方法,该控制器以对外部刺激和异步的连续反应为特征。我们从Drusinsky和Harel的方法开始,将状态图开发成一个相互连接的FSM树:状态图层次结构的每个非原子级别上的每个状态都由一台机器表示,该机器实现了与下一直接级别上的子状态相对应的FSM。本文提出的方法基于:(i)标准监督控制理论中可控性的修改定义(如Fiordal等人对不相等字母的建议);(ii) Heymann的优先同步而不是Ramadge-Wonham类型的监管者和事件强迫Golaszewski-Ramadge的监管者处理带有驱动事件的不确定性系统;(iii) LaFortune等提出的处理实际应用中状态空间爆炸的析取和混合融合规则;(iv) Endsley等提出的通过端口结构实现模块间通信的机制。提出的新合成成功地解决了状态图的模块化验证/实现问题
本文章由计算机程序翻译,如有差异,请以英文原文为准。
statecharts for Reconfigurable Control of Complex Reactive Systems: a new formal verification methodology
Several formalisms are available for the specification of control in complex reactive systems. Statecharts are increasingly being proposed as the language of choice. Limitations of these formalisms in the context of formal verification have been discussed in an accompanying paper. Formal verification is necessary to specify these systems in an easy and safe way, to maintain traceability along the different phases of the design, and to analyse the behaviour of the defined system. The current communication reports a new approach for modular specification and verification of statechart based controllers for systems characterised by continuous reaction to external stimuli and asynchrony. We start from the methodology of Drusinsky and Harel to develop a statechart into a tree of interconnected FSMs: each state at each non-atomic level of the statechart hierarchy is represented by a machine implementing the FSM corresponding to its sub-states on the next immediate level. The methodology proposed in the present paper is based on: (i) a modified definition of controllability (as suggested by Fiordal, et al for unequal alphabets) from that in standard supervisory control theory; (ii) prioritized synchronization of Heymann instead of Ramadge-Wonham type supervisors and event forcing supervisors of Golaszewski-Ramadge to handle the resulting nondeterministic systems with driven events; (iii) disjunctive and mixed fusion rules of LaFortune et al to handle the state space explosion in real-scale applications and (iv) the mechanism of inter-modular communication through port structures developed by Endsley et al. The proposed new synthesis successfully confronts the modular verification/implementation problem for statecharts
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