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# Offically Supported TensorFlow 2.1+ Models on Cloud TPU | |
## Natural Language Processing | |
* [bert](nlp/bert): A powerful pre-trained language representation model: | |
BERT, which stands for Bidirectional Encoder Representations from | |
Transformers. | |
[BERT FineTuning with Cloud TPU](https://cloud.google.com/tpu/docs/tutorials/bert-2.x) provides step by step instructions on Cloud TPU training. You can look [Bert MNLI Tensorboard.dev metrics](https://tensorboard.dev/experiment/LijZ1IrERxKALQfr76gndA) for MNLI fine tuning task. | |
* [transformer](nlp/transformer): A transformer model to translate the WMT | |
English to German dataset. | |
[Training transformer on Cloud TPU](https://cloud.google.com/tpu/docs/tutorials/transformer-2.x) for step by step instructions on Cloud TPU training. | |
## Computer Vision | |
* [efficientnet](vision/image_classification): A family of convolutional | |
neural networks that scale by balancing network depth, width, and | |
resolution and can be used to classify ImageNet's dataset of 1000 classes. | |
See [Tensorboard.dev training metrics](https://tensorboard.dev/experiment/KnaWjrq5TXGfv0NW5m7rpg/#scalars). | |
* [mnist](vision/image_classification): A basic model to classify digits | |
from the MNIST dataset. See [Running MNIST on Cloud TPU](https://cloud.google.com/tpu/docs/tutorials/mnist-2.x) tutorial and [Tensorboard.dev metrics](https://tensorboard.dev/experiment/mIah5lppTASvrHqWrdr6NA). | |
* [mask-rcnn](vision/detection): An object detection and instance segmentation model. See [Tensorboard.dev training metrics](https://tensorboard.dev/experiment/LH7k0fMsRwqUAcE09o9kPA). | |
* [resnet](vision/image_classification): A deep residual network that can | |
be used to classify ImageNet's dataset of 1000 classes. | |
See [Training ResNet on Cloud TPU](https://cloud.google.com/tpu/docs/tutorials/resnet-2.x) tutorial and [Tensorboard.dev metrics](https://tensorboard.dev/experiment/CxlDK8YMRrSpYEGtBRpOhg). | |
* [retinanet](vision/detection): A fast and powerful object detector. See [Tensorboard.dev training metrics](https://tensorboard.dev/experiment/b8NRnWU3TqG6Rw0UxueU6Q). | |
* [shapemask](vision/detection): An object detection and instance segmentation model using shape priors. See [Tensorboard.dev training metrics](https://tensorboard.dev/experiment/ZbXgVoc6Rf6mBRlPj0JpLA). | |
## Recommendation | |
* [dlrm](recommendation/ranking): [Deep Learning Recommendation Model for | |
Personalization and Recommendation Systems](https://arxiv.org/abs/1906.00091). | |
* [dcn v2](recommendation/ranking): [Improved Deep & Cross Network and Practical Lessons for Web-scale Learning to Rank Systems](https://arxiv.org/abs/2008.13535). | |
* [ncf](recommendation): Neural Collaborative Filtering. See [Tensorboard.dev training metrics](https://tensorboard.dev/experiment/0k3gKjZlR1ewkVTRyLB6IQ). | |