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首页> 外文期刊>International journal of organizational and collective intelligence >Implementing Genetic Algorithms to Assist Oil and Gas Pipeline Integrity Assessment and Intelligent Risk Optimization
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Implementing Genetic Algorithms to Assist Oil and Gas Pipeline Integrity Assessment and Intelligent Risk Optimization

机译:实施遗传算法协助油气管道完整性评估和智能风险优化

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摘要

Oil and gas industry, worldwide, needs to monitor, control and assess the elements that are involved in the general oil transportation and production processes. However, these processes are not risk free. The project proposes an intelligent support system that provides optimized projections for effective risk management. The project focuses on the development of a set of Genetic Algorithms (GAs), a branch of AI systems that assists to optimize the usage and distribution of resources. GAs will reduce the latent risks and potential dangers as much as possible. The main purpose is to minimize the risk levels in a pipeline segment based on their condition and by detecting optimal variable configurations: their Risk of Failure (RoF), Probability of Failure (PoF), Consequence of Failure (CoF), and their sub elements (threats and impacts). The heuristic results generated by this set of GAs show a significant reduction on the risk assessment measures, by finding "optimized" configurations of these variables.
机译:全球的石油和天然气行业需要监视,控制和评估一般石油运输和生产过程中涉及的要素。但是,这些过程并非没有风险。该项目提出了一个智能支持系统,该系统可以为有效的风险管理提供优化的预测。该项目专注于开发一组遗传算法(GA),这是AI系统的一个分支,可帮助优化资源的使用和分配。遗传算法将尽可能减少潜在风险和潜在危险。主要目的是根据条件和检测最佳变量配置来最大程度地降低管道段中的风险水平:失效风险(RoF),失效概率(PoF),失效后果(CoF)及其子元素(威胁和影响)。通过找到这些变量的“优化”配置,这组GA产生的启发式结果显示出风险评估措施的显着减少。

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