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A knowledge-based interactive train scheduling system-aiming at large-scale complex planning expert systems

机译:基于知识的交互式列车调度系统 - 针对大规模复杂的规划专家系统

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By using AI multiple programming paradigms, a knowledge-based interactive train scheduling system is developed on the basis of EUREKA II. The approach is based on a goal-strategy-net hierarchical frame network that declaratively represents knowledge for scheduling. The field prototype system developed for subway train scheduling has been judged satisfactory by experts. The technology developed is considered not only useful for practical train scheduling system but also for building large-scale complex planning expert systems involving the allocation of the needed personnel.
机译:通过使用多个编程范例,基于Eureka II开发了一种基于知识的交互式列车调度系统。该方法基于目标策略 - 净纳入帧网络,其声明地表示调度知识。为地铁列车调度开发的现场原型系统已被专家判断令人满意。该技术被认为不仅适用于实际列车调度系统,而且还用于建立涉及所需人员分配的大规模复杂规划专家系统。

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