情景感知非单调推理代理的建模和验证

A. Rakib, H. Haque
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引用次数: 5

摘要

本文通过关注自动化分析和验证,补充了我们之前关于资源有限的上下文感知系统的形式化建模的工作,该系统使用可撤销推理处理不一致的上下文信息。一个案例研究演示了如何使用模型检查技术来正式分析基于代理之间消息传递的上下文感知系统的定量和定性属性。系统的行为(语义)由术语重写系统建模,所需的属性用LTL公式表示。Maude LTL模型检查器用于执行系统的自动分析,并验证它提供的不冲突的上下文信息保证。
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Modeling and verifying context-aware non-monotonic reasoning agents
This paper complements our previous work on formal modeling of resource-bounded context-aware systems, which handle inconsistent context information using defeasible reasoning, by focusing on automated analysis and verification. A case study demonstrates how model checking techniques can be used to formally analyze quantitative and qualitative properties of a context-aware system based on message passing among agents. The behavior (semantics) of the system is modeled by a term rewriting system and the desired properties are expressed as LTL formulas. The Maude LTL model checker is used to perform automated analysis of the system and verify non-conflicting context information guarantees it provides.
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