Recoverable Resource Estimation by Nonlinear Geostatistics – Module 1: Uniform Conditioning 

Roberto Rolo - Geovariances trainer
Location

France

Date

10.08.2026

Cost

$550

Category

Geology

Organiser

Datamine Europe

Unlock the power of Uniform Conditioning: From theory to recoverable resources and grade-tonnage curves with Isatis.neo.

1-day course – August 10, 2026 Level: Advanced

Objectives

This course provides a solid foundation in geostatistical methods for recoverable resource estimation. The skills you will develop will assist you in:
– Estimating long-term resources,
– Estimating grade-tonnage curves during exploration.

It comprises three modules that can be taken separately:

  • Module 1 dives into the importance of nonlinear techniques in generating unbiased grade-tonnage curves, especially in sparse sampling conditions. You will gain a deep understanding of Uniform Conditioning (UC) and confidently apply it to compute grade, tonnage, and metal quantities across various cut-offs.
  • Module 2 explores Multiple Indicator Kriging and Conditional Expectation, helping you master when and how to apply each technique effectively.
  • Module 3 introduces two powerful conditional simulation techniques for continuous variables like grades. You’ll also learn how to post-process results to generate accurate grade-tonnage curves.

Course content

  • Introduction
    – Why kriging isn’t enough: Understand the limitations of kriging and how wide high drill hole spacing can lead to smoothing effects that underestimate variability.
    – Master the fundamentals of recoverable resource estimation and learn how to apply them in real-world mining projects.
  • Transforming data
    – Model the Gaussian anamorphosis: Transform any distributions into Gaussian ones, a necessary step for nonlinear modeling.
    – Change of support made clear: Grasp the impact of support size on grade variance—core vs. block grades.
  • Exploring Uniform Conditioning (UC)
    – Learn the fundamentals of UC to estimate recoverable resources for different cut-offs.
    – Understand the Information effect, how sampling density impacts your estimates, and how to correct them.
    – Localized Uniform Conditioning (LUC): Apply UC within panels at the block or SMU level to produce models compatible with mine planning.
    – Manage multi-domain and multivariate deposits.
    – Produce robust grade-tonnage curves and generate robust estimates of grade, tonnage, and metal quantities by cut-off grade from UC results to support your resource evaluations.

Outlines

  • Balanced learning approach: The course combines theory with practical applications, ensuring concepts are understood and applied effectively.
  • Hands-on software training: Engage in computer-based exercises using Isatis.neo software, reinforcing learning through real-world data scenarios.
  • Personalized feedback: Receive individualized guidance and feedback from experienced trainers during online sessions to support your learning journey.
  • Comprehensive resources: Access detailed course materials, including documentation, journal files, and datasets, to reinforce learning and facilitate application post-training.

Who should attend

Geologists, Mining engineers, and professionals involved in feasibility studies or medium to long-term planning who wish to deepen their theoretical and practical knowledge of mining geostatistics.

Prerequisites

  • Basic knowledge of linear geostatistics is recommended. The course Mineral Resource Estimation, which covers the fundamental concepts of geostatistics for resource estimation, offers an ideal basis for this advanced course. 
  • A basic understanding of resource concepts such as gradetonnage, and cut-off is beneficial.
  • You can enhance your skills by attending the two additional modules of this course: Module 2 focuses on Multiple Indicator Kriging, while Module 3 covers Simulations of continuous variables, to calculate metal and tonnage quantities in both modules.


Geovariances – Datamine France provides training for mining professionals seeking to strengthen their geostatistics expertise. Our courses blend theory with hands-on practice.

Flexible delivery formats, including online, hybrid, and face-to-face, are complemented by on-demand training, available for both in-company and public sessions, and tailored to your specific needs.

Develop skills in key areas such as:
Local and recoverable resource estimation
Uncertainty and risk analysis
Resource classification
Geological domain modeling
Drill Hole Spacing Analysis
Machine Learning

On-demand hands-on sessions on Isatis.neo and Isatis.py allow you to directly apply geostatistical methods in industry-standard software.

The amount of tickets is limited

Learn Uniform Conditioning to estimate recoverable resources and compute grade-tonnage curves.

France

10.08.2026

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