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Application of joint conditional simulation to uncertainty quantification and resource classification

机译:联合条件模拟在不确定性量化和资源分类中的应用

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摘要

Identifying and quantifying grade uncertainty is important in mineral resource classification from an economic perspective. Conditional simulation techniques can be used to this end. In multi-element deposits, for which spatial correlations are important, techniques such as principal component analysis and minimum/maximum auto-con-elation factors can be used to transform the multivariate simulation problem into a series of univariate problems. In this study, a methodology is presented for classifying mineral resources and for assessing the uncertainty in grade tonnage curves, with an application to a porphyry copper deposit located in the central part of Iran with three correlated variables (grades of Cu, Mo, and Ag). The resources are classified based on the simulated copper grades, considering the so-called 15 % rule. This means that the estimated grade, tonnage, and metal content in a production period will have at most 15 % error at 90 % confidence level.
机译:从经济的角度来看,识别和量化品位的不确定性对矿产资源分类很重要。为此可以使用条件仿真技术。在空间相关性很重要的多元素矿床中,可以使用诸如主成分分析和最小/最大自相关因子之类的技术将多变量模拟问题转换为一系列单变量问题。在这项研究中,提出了一种用于分类矿产资源和评估品位吨位曲线不确定性的方法,并将其应用于位于伊朗中部具有三个相关变量(铜,钼和银的品位)的斑岩铜矿床。 )。考虑到所谓的15%规则,根据模拟铜品位对资源进行分类。这意味着在90%的置信度下,生产期间的估计品位,吨位和金属含量最多会有15%的误差。

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