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ο»ΏMany cutting-edge computer vision models consist of multiple stages: | |
β° backbone extracts the features, | |
β° neck refines the features, | |
β° head makes the detection for the task. | |
Implementing this is cumbersome, so π€ transformers has an API for this: Backbone! | |
![image_1](image_1.jpg) | |
Let's see an example of such model. | |
Assuming we would like to initialize a multi-stage instance segmentation model with ResNet backbone and MaskFormer neck and a head, you can use the backbone API like following (left comments for clarity) π | |
![image_2](image_2.jpg) | |
One can also use a backbone just to get features from any stage. You can initialize any backbone with `AutoBackbone` class. | |
See below how to initialize a backbone and getting the feature maps at any stage π | |
![image_3](image_3.jpg) | |
Backbone API also supports any timm backbone of your choice! Check out a variation of timm backbones [here](https://t.co/Voiv0QCPB3). | |
![image_4](image_4.jpg) | |
Leaving some links π: | |
π I've created a [notebook](https://t.co/PNfmBvdrtt) for you to play with it | |
π [Backbone API docs](https://t.co/Yi9F8qAigO) | |
π [AutoBackbone docs](https://t.co/PGo9oILHDw) π | |
(all written with love by me!) | |
> [!NOTE] | |
[Orignial tweet](https://twitter.com/mervenoyann/status/1749841426177810502) (January 23, 2024) | |