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Clustering mining blocks in presence of geological uncertainty

机译:集群存在的地质采矿块不确定性

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摘要

A major trend in mine production planning research is incorporating geological uncertainty in the processes of planning. Many mathematical models and heuristic approaches are proposed to deal with the uncertainty. Although there have been advances in exact methods to solve simpler instances of the mine production scheduling problem more complex instances of the model, especially when incorporating uncertainty, remain intractable and aggregation of blocks can help to decrease solution times. In this paper, we present four variations of the agglomerative hierarchical clustering algorithm, one based on deterministic estimates of properties and three based on possible worlds approach which use Geostatistical realizations to form aggregates with regard to the geological properties and the existing uncertainties. We show, through case studies, that uncertainty-based algorithms can result in aggregates that are less susceptible to uncertainties, and at the same time, the proposed algorithm can produce aggregates that are within a controlled size and have minable shapes.
机译:矿山生产计划研究的一个重要趋势结合地质的不确定性吗流程规划。和启发式方法提出了交易与不确定性。确切的方法来解决简单的进步煤矿生产调度的实例问题更复杂的模型的实例,特别是将不确定性,依然存在可以帮助棘手和聚合的块减少解决方案。目前的四种变体凝结的层次聚类算法,一个基于确定性的估计和三个属性基于世界方法的使用地质统计学实现形成聚集关于和地质属性现有的不确定性。研究,uncertainty-based算法可以结果在聚集,不太容易不确定性,同时,建议算法可以产生总量内控制规模和可开采的形状。

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