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Genetic agents in an EDSS system to optimize resources management and risk object evacuation

机译:EDSS系统中的遗传代理可优化资源管理和风险对象撤离

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摘要

Emerging efficient and intelligent behaviors from co-operative activities of many autonomous agents comprise unexpected events that often take place inside animal social organizations. This type of evidence induced artificial intelligence researchers to re-design the artificial computing system architectures, from monolithic and hierarchical structures toward networked and component distributed environments. In this work the co-operative capacity of three different software agents is experimented to front the management problem, emerging during fires emergencies, relative to fire-proof resources optimization and dangerous products evacuation inside large oil storage and production plants. The three software components include, respectively, a repository or memory of past solutions (managed by case-based reasoning methods), the capacity to discover new solutions (using evolutionary algorithms), and the capacity to verify solutions (using numerical simulation models). The main result of the work was that, from the co-operative activities of these three software components, together with the human agent, the capacity to learn and adapt solutions for the current problem arises as a proper and additional feature of such hybrid system. The general problem of anti-fire resources optimization and evacuation of risk products, during fire emergencies, inside a petrol-chemical plant, is firstly described. Then, the models and the software algorithms, implemented in the three mentioned components, are illustrated in the central part of the work. Finally, a set of test cases are reported, for different scenarios in the physical domain, experimented and analyzed.
机译:许多自治机构的合作活动中出现的有效和聪明的行为包括动物社会组织内部经常发生的意外事件。这种类型的证据促使人工智能研究人员重新设计人工计算系统的体系结构,从整体式和分层结构到网络化和组件分布式环境。在这项工作中,对三种不同软件代理的协作能力进行了试验,以应对火灾紧急情况下出现的管理问题,这与大型油库和生产厂内部的防火资源优化和危险产品疏散有关。这三个软件组件分别包括过去解决方案的存储库或内存(通过基于案例的推理方法进行管理),发现新解决方案的能力(使用进化算法)和验证解决方案的能力(使用数值模拟模型)。这项工作的主要结果是,通过这三个软件组件的协作活动以及人工代理,这种混合系统的适当特性是具有学习和适应当前问题的解决方案的能力。首先描述了在石油化工厂内部发生火灾紧急情况时,抗火资源优化和危险产品疏散的普遍问题。然后,在工作的中心部分说明了在上述三个组件中实现的模型和软件算法。最后,针对物理领域中的不同场景,报告了一组测试案例,进行了实验和分析。

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