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Predictive Geological Mapping Using Closed-Form Non-stationary Covarlance Functions with Locally Varying Anisotropy: Case Study at El Teniente Mine (Chile)

机译:使用具有局部变化各向异性的闭合形式非平稳Covarlance函数进行预测性地质制图:El Teniente矿(智利)的案例研究

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This paper is concerned with the problem of predicting the surface elevation of the Braden breccia pipe at the El Teniente mine in Chile. This mine is one of the world's largest and most complex porphyry-copper ore systems. As the pipe surface constitutes the limit of the deposit and the mining operation, predicting it accurately is important. The problem is tackled by applying a geostatistical approach based on closed-form non-stationary covari-ance functions with locally varying anisotropy. This approach relies on the mild assumption of local stationarity and involves a kernel-based experimental local variogram a weighted local least-squares method for the inference of local covariance parameters and a kernel smoothing technique for knitting the local covariance parameters together for kriging purpose. According to the results, this non-stationary geostatistical method outperforms the traditional stationary geostatistical method in terms of prediction and prediction uncertainty accuracies.
机译:本文涉及预测智利El Teniente矿山Braden角砾岩管道的表面高度的问题。该矿是世界上最大,最复杂的斑岩铜矿系统之一。由于管道表面构成了沉积物和采矿作业的极限,因此准确预测其重要性非常重要。通过采用基于具有局部变化各向异性的闭合形式非平稳协方差函数的地统计学方法来解决该问题。该方法依赖于局部平稳性的温和假设,并涉及基于核的实验局部变异函数,加权局部最小二乘法以推断局部协方差参数,以及采用核平滑技术将局部协方差参数编织在一起以进行克里金法。根据结果​​,这种非平稳地统计学方法在预测和预测不确定性准确性方面优于传统的静止地统计学方法。

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