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首页> 外文期刊>Advances in civil engineering >Research on Reasoning concerning Emergency Measures for Industrial Project Scheduling Control
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Research on Reasoning concerning Emergency Measures for Industrial Project Scheduling Control

机译:关于工业项目调度控制应急措施的推理研究

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Industry is an important pillar of the national economy, and industrial projects are the most complex and difficult to manage and control in the construction industry; thus, the resource scheduling control of industrial projects is one of the core issues for industrial construction projects. The performance rate of the contract time periods of previous industrial construction projects has been very low. In scheduling control based on case-based reasoning (CBR), the goal is to implement preventive measures by referring to existing scheduling control cases and control the scheduling of resources through reasoning on emergency measures to prevent scheduling control deviations. In this paper, the rough set approach is used to represent the case feature information in a case reasoning model for industrial project scheduling control, attribute reduction is used to determine the weights of the feature attributes in the rough set representation, and the similarity between cases is calculated for case retrieval. The accuracy of the rough-set-based similarity calculation is verified through matrix similarity calculations and a visual analysis of the all closeness centrality and weighted all degree centrality of the corresponding complex network; thus, similar cases of industrial project scheduling control are identified. To verify the applicability and effectiveness of the proposed methodology, a typical coal chemical general contract project case is carried out. The rough set comprehensive similarity results were 0.733, 0.621, 0.536, 0.614, 0.559, 0.950, 0.708, 0.546, 0.733, 0.664, 0.526, and 0.743, and the matrix similarity results were 0.417, 0.583, 0.417, 0.417, 0.417, 0.833, 0.417, 0.500, 0.417, 0.500, 0.333, and 0.500. The results showed that the case retrieval accuracy of traditional matrix similarity is not as high as the rough set comprehensive similarity, so is the most similar case to the target case Y . Case retrieval results indicate that the proposed methodology can provide a good similar case selection strategy with project managers, and the final required preventive measures for the target case can be found. Based on the identified similar cases, preventive measures for scheduling control are formulated to effectively prevent scheduling deviations of industrial projects.
机译:行业是国民经济的重要支柱,工业项目是建筑业最复杂,难以管理和控制的;因此,工业项目的资源调度控制是工业建设项目的核心问题之一。以前工业建设项目的合同时间段的绩效率非常低。在基于基于案例推理(CBR)的调度控制中,目标是通过参考现有调度控制案例来实现预防措施,并通过推理对应急措施来控制资源的调度,以防止调度控制偏差。在本文中,粗糙集方法用于表示工业项目调度控制的情况推理模型中的情况信息,用于确定粗糙集表示中的特征属性的权重以及案例之间的相似性计算出于案例检索。通过矩阵相似性计算验证了基于粗糙的相似性计算的准确性和对相应复杂网络的所有接近度量和加权的视觉分析,以及加权的相应复杂网络的全部中心;因此,鉴定了类似工业项目调度控制的情况。为了验证所提出的方法的适用性和有效性,进行了典型的煤炭化学一般合同项目案例。粗糙设定综合相似性结果为0.733,0.621,0.536,0.614,0.559,0.950,0.708,0.546,0.733,0.664,0.526和0.743,以及基质相似性结果为0.417,0.583,0.417,0.417,0.417,0.833, 0.417,0.500,0.417,0.500,0.333和0.500。结果表明,传统矩阵相似度的案例检索准确性与粗糙集综合相似性不那么高,因此目标情况最为类似的情况。案例检索结果表明,建议的方法可以提供与项目经理的良好类似案例选择策略,并找到目标案件的最终所需的预防措施。基于所确定的类似情况,制定了对调度控制的预防措施,以有效地防止工业项目的调度偏差。

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