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Search-Based Synthesis of Probabilistic Models for Quality-of-Service Software Engineering

机译:基于概率模型的搜索合成,用于服务质量软件工程

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The formal verification of finite-state probabilistic models supports the engineering of software with strict quality-of-service (QoS) requirements. However, its use in software design is currently a tedious process of manual multiobjective optimisation. Software designers must build and verify probabilistic models for numerous alternative architectures and instantiations of the system parameters. When successful, they end up with feasible but often suboptimal models. The EvoChecker search-based software engineering approach and tool introduced in our paper employ multiobjective optimisation genetic algorithms to automate this process and considerably improve its outcome. We evaluate EvoChecker for six variants of two software systems from the domains of dynamic power management and foreign exchange trading. These systems are characterised by different types of design parameters and QoS requirements, and their design spaces comprise between 2E+14 and 7.22E+86 relevant alternative designs. Our results provide strong evidence that EvoChecker significantly outperforms the current practice and yields actionable insights for software designers.
机译:有限状态概率模型的正式验证支持具有严格的服务质量(QoS)要求的软件工程。但是,它在软件设计中使用目前是手动多目标优化的繁琐过程。软件设计人员必须为众多替代架构和系统参数的实例构建和验证概率模型。当成功时,他们最终可行但通常是次优模型。我们的论文中介绍了基于EvoChecker搜索的软件工程方法和工具,采用了多目标优化遗传算法来自动化此过程,并大大提高其结果。我们评估了来自动态电力管理领域的两个软件系统的六种变体的evoChecker和外汇交易。这些系统的特征在于不同类型的设计参数和QoS要求,并且其设计空间包括2E + 14和7.22E + 86相关的替代设计。我们的结果提供了强有力的证据表明EvoChecker显着优于目前的实践,并对软件设计师产生可操作的见解。

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