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Improving the Reliability of Decision-Support Systems for Nuclear Emergency Management by Leveraging Software Design Diversity

机译:通过利用软件设计多样性提高核应急管理决策支持系统的可靠性

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This paper introduces a novel method of continuous verification of simulation software used in decision-support systems for nuclear emergency management (DSNE). The proposed approach builds on methods from the field of software reliability engineering, such as N-Version Programming, Recovery Blocks, and Consensus Recovery Blocks. We introduce a new acceptance test for dispersion simulation results and a new voting scheme based on taxonomies of simulation results rather than individual simulation results. The acceptance test and the voter are used in a new scheme, which extends the Consensus Recovery Block method by a database of result taxonomies to support machine-learning. This enables the system to learn how to distinguish correct from incorrect results, with respect to the implemented numerical schemes. Considering that decision-support systems for nuclear emergency management are used in a safety-critical application context, the methods introduced in this paper help improve the reliability of the system and the trustworthiness of the simulation results used by emergency managers in the decision making process. The effectiveness of the approach has been assessed using the atmospheric dispersion forecasts of two test versions of the widely used RODOS DSNE system.
机译:本文介绍了一种用于核应急管理决策支持系统(DSNE)的仿真软件连续验证的新方法。所提出的方法基于软件可靠性工程领域的方法,例如N版本编程,恢复块和共识恢复块。我们针对色散模拟结果引入了一种新的验收测试,并且根据模拟结果的分类法(而非单个模拟结果)引入了一种新的投票方案。验收测试和投票者被用在一个新方案中,该方案通过结果分类法数据库扩展了“共识恢复块”方法,以支持机器学习。相对于已实现的数值方案,这使系统能够学习如何区分正确结果与错误结果。考虑到在安全关键的应用环境中使用了用于核应急管理的决策支持系统,本文介绍的方法有助于提高系统的可靠性以及应急管理人员在决策过程中使用的仿真结果的可信赖性。使用广泛使用的RODOS DSNE系统的两个测试版本的大气弥散度预测评估了该方法的有效性。

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