VRGS tutorials
There are three tutorials that take you through different aspects of VRGS.
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Basic tutorial - this tutorial walks through how to create a VRGS project, load data, and start interpreting your 3D digital outcrop data.
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Advanced and extra tutorial - this tutorial describes a VRGS project structure, how to manage project backups, and geospatial data positioning (e.g. coordinate transforms).
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Fracture tutorial - a complete fracture study, from mapping traces on the outcrop through to a validated Discrete Fracture Network.
Basic tutorial
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We'll go through the layout and menu system of VRGS and what the different components are.
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Create our first VRGS project and discuss the basic structure of a VRGS project.
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Import/load in some 3D outcrop data and describe a bit about what the different 3D data formats are and how VRGS interacts with them.
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Show how to add annotations to the project and a 3D outcrop model, such as scale bars and basic measurements.
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Discuss some of the basic interpretation tools in VRGS and how you might use them.
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We'll also discuss the type of attributes that you can calculate and visualise from your 3D outcrop model.
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Then we'll wrap up the tutorial and talk about next steps and how you get more from your 3D outcrop data!
Advanced tutorial
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Description of a VRGS project directory and data structure.
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How to manage VRGS project backups and restoration.
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Geospatial coordinate system setup of a project and transforming data.
Fracture mapping and analysis tutorial
A worked end-to-end fracture study. Each step links out to the reference guide behind it, so this is the route through them rather than a repeat of them.
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Overview - the workflow, and what you need before you start.
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Mapping fracture traces - digitising traces on the model by hand, and recording fractures along a scan line.
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Fractures from photographs - the AI, ACO and Phase Congruence detectors, and projecting the result onto the 3D model.
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Orientations and fracture sets - contouring the stereonet, and splitting measurements into sets by hand or by k-means.
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Measuring fracture intensity - P10 along a scan line, and P21/P32/P33 intensity maps across the outcrop.
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Building a DFN - generating a Discrete Fracture Network from what you mapped, conditioning it on observed intensity, and validating it against your traces.