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| # Timber Identification CNN | |
| ## Introduction | |
| This is the demo for my Final Year Project, it is a timber identification model. The model takes in an input image, then guesses the wood species of the given image. | |
| The model is trained on microscopic wood cross sectional images, from 41 different species. | |
| ## Main Features | |
| ### How to use it | |
| Simply go to the "Classification" tab, upload an image and press the submit button | |
| ### Sample Images | |
| If you do not have any images, you may used the sample images provided in the "Samples" tab. | |
| Simply go the the "Samples" tab, choose a species from the dropdown, and select an image by clicking on the "Submit" button | |
| ### Classification Output | |
| After classification has completed, the predictions results will be shown. The header will be the main predictions. There will also be a dropdown, containing more details of the species. Note some species are more well documented than others, so the length of the details will vary greatly. | |
| Below that are the confidence scores of the prediction, arranged in a descending order | |
| ### Prediction History | |
| In the "History" tab, the results of previous predictions will be displayed, with the image uploaded and the species predicted. | |
| Note that the history is only for the current session, so refressing the page will remove any saved states. |