AI Suite: Difference between revisions

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==Apply a model==
==Apply a model==
* When you have created your own model or by selecting an existing [[ONNX]] file you can apply it to other projects using the [[Inference Overlay]].
* When you have created your own model or by selecting an existing [[ONNX]] file you can apply it to other projects using the [[Inference Overlay]]. For example: [[How to detect foliage using an Inference Overlay]]


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Latest revision as of 08:51, 15 October 2025

The Tygron AI Suite consist of a several tools that can help when using an existing Neural Network in an Inference Overlay or when creating a new one.

Creating you own model

In order to create your own AI model based on a Neural Network you have to follow these steps.

  1. Start with a definition of which objects you want to detect. For example trees, cars, solar panels, etc. These can also be subsets for example trees can also be sub dived into palms, pines, etc.
  2. Now create one or more projects (with a good variation) and manually create your training data by creating areas outlining these objects. Follow: How to create AI train data with QGIS
  3. Create two groups of objects a TRAIN and TEST dataset that can be exported. Follow: How to export AI Training Data
  4. After exporting you can start training your Neural Network resulting in a ONNX file. Follow: How to train your own AI model for an Inference Overlay.
  5. Then import the ONNX back into the Tygron Platform an run it in an Inference Overlay. For example: How to detect foliage using an Inference Overlay
  6. Finally validate the results on a different project and iterate back to a previous step if needed. Follow: How to evaluate an AI model

Apply a model