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Comparison of indicator kriging, conditional indicator simulation and multiple-point statistics used to model slate deposits

机译:比较指标克里金法,条件指标模拟法和用于模拟板岩矿床的多点统计

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摘要

The resources in an ornamental slate deposit can be estimated using geostatistical estimation techniques applied to information collected from drill cores. The result, however, is a smooth approximation that fails to take account of the natural variability in mineralization, which is fundamental to proper design and evaluation of the financial viability of a mining deposit. Geostatistical simulation techniques are more useful in this respect, as they reflect different realizations of the reality and better reflect natural mineral dispersion. In this work, we evaluate the resources of a slate quarry by comparing the results obtained using two geostatistical techniques-indicator kriging (ik) and sequential indicator simulation (sisim)-with the results obtained using the single normal equation simulation (snesim) technique based on multiple-point statistics (mps), analyzing their usefulness in evaluating the financial risk derive from uncertainty in regard to knowledge of the deposit. Our results indicate that although the multiple-point statistics approach produces models that are closer to reality than the models produced by the geostatistical techniques, the simulation relies in part on information obtained via indicator kriging.
机译:可以使用应用于从钻芯收集的信息的地统计学估计技术来估计装饰性板岩矿床中的资源。但是,结果是一个平滑的近似值,没有考虑到矿化的自然变异性,这对于正确设计和评估矿床的财务可行性至关重要。地统计模拟技术在这方面更有用,因为它们反映了现实的不同实现,并更好地反映了天然矿物的分散性。在这项工作中,我们通过比较使用两种地统计技术(指标克里金法(ik)和顺序指示器模拟(sisim))获得的结果与使用基于单个法线方程模拟(snesim)技术获得的结果,来评估板岩采石场的资源在多点统计(mps)上,分析其在评估财务风险方面的有用性来自存款知识的不确定性。我们的结果表明,尽管多点统计方法所产生的模型比地统计技术所产生的模型更接近实际,但模拟部分依赖于通过指标克里金获得的信息。

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