transformers/examples/tensorflow
Matt 508a704055
No more Tuple, List, Dict (#38797)
* No more Tuple, List, Dict

* make fixup

* More style fixes

* Docstring fixes with regex replacement

* Trigger tests

* Redo fixes after rebase

* Fix copies

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* update

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* update

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* make style after rebase

* Patch the hf_argparser test

* Patch the hf_argparser test

* style fixes

* style fixes

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* Fix docstrings in Cohere test

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Co-authored-by: ydshieh <ydshieh@users.noreply.github.com>
2025-06-17 19:37:18 +01:00
..
contrastive-image-text v4.53.0.dev0 2025-05-20 18:12:56 +02:00
image-classification v4.53.0.dev0 2025-05-20 18:12:56 +02:00
language-modeling Use Python 3.9 syntax in examples (#37279) 2025-04-07 12:52:21 +01:00
language-modeling-tpu Use HF papers (#38184) 2025-06-13 11:07:09 +00:00
multiple-choice v4.53.0.dev0 2025-05-20 18:12:56 +02:00
question-answering No more Tuple, List, Dict (#38797) 2025-06-17 19:37:18 +01:00
summarization v4.53.0.dev0 2025-05-20 18:12:56 +02:00
text-classification v4.53.0.dev0 2025-05-20 18:12:56 +02:00
token-classification Use Python 3.9 syntax in examples (#37279) 2025-04-07 12:52:21 +01:00
translation v4.53.0.dev0 2025-05-20 18:12:56 +02:00
_tests_requirements.txt Pass datasets trust_remote_code (#31406) 2024-06-17 17:29:13 +01:00
README.md TF: purge TFTrainer (#28483) 2024-01-12 16:56:34 +00:00
test_tensorflow_examples.py Use Python 3.9 syntax in examples (#37279) 2025-04-07 12:52:21 +01:00

Examples

This folder contains actively maintained examples of the use of 🤗 Transformers organized into different ML tasks. All examples in this folder are TensorFlow examples and are written using native Keras. If you've previously only used 🤗 Transformers via TFTrainer, we highly recommend taking a look at the new style - we think it's a big improvement!

In addition, all scripts here now support the 🤗 Datasets library - you can grab entire datasets just by changing one command-line argument!

A note on code folding

Most of these examples have been formatted with #region blocks. In IDEs such as PyCharm and VSCode, these blocks mark named regions of code that can be folded for easier viewing. If you find any of these scripts overwhelming or difficult to follow, we highly recommend beginning with all regions folded and then examining regions one at a time!

The Big Table of Tasks

Here is the list of all our examples:

Task Example datasets
language-modeling WikiText-2
multiple-choice SWAG
question-answering SQuAD
summarization XSum
text-classification GLUE
token-classification CoNLL NER
translation WMT

Coming soon

  • Colab notebooks to easily run through these scripts!