- Year: 2022
- Organisation: TensorFlow
- Project Title: Publish fine-tuned CoAtNet in TensorFlow Hub TensorFlow Hub is the main TensorFlow model repository with thousands of pre-trained models with documentation, sample code and readily available to use or fine-tune. The idea behind the project is to develop new State-of-the-Art models like CoAtNet and publish the pre-trained models on TensorFlow Hub using the ImageNet1k dataset. CoAtNet achieves 86.0% ImageNet top-1 accuracy; When pre-trained with 13M images from ImageNet-21K, our CoAtNet achieves 88.56% top-1 accuracy, matching ViT-huge pre-trained with 300M images from JFT-300M while using 23x less data; Notably, when we further scale up CoAtNet with JFT-3B, it achieves 90.88% top-1 accuracy on ImageNet.
- Mentors: Luis Gustavo Martins & Sayak Paul
-
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Implementation of CoAtNet in TensorFlow and Keras.
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