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|
|
| # CTRL |
|
|
| <div class="flex flex-wrap space-x-1"> |
| <a href="https://huggingface.co/models?filter=ctrl"> |
| <img alt="Models" src="https://img.shields.io/badge/All_model_pages-ctrl-blueviolet"> |
| </a> |
| <a href="https://huggingface.co/spaces/docs-demos/tiny-ctrl"> |
| <img alt="Spaces" src="https://img.shields.io/badge/%F0%9F%A4%97%20Hugging%20Face-Spaces-blue"> |
| </a> |
| </div> |
|
|
| ## Overview |
|
|
| CTRL model was proposed in [CTRL: A Conditional Transformer Language Model for Controllable Generation](https://arxiv.org/abs/1909.05858) by Nitish Shirish Keskar*, Bryan McCann*, Lav R. Varshney, Caiming Xiong and |
| Richard Socher. It's a causal (unidirectional) transformer pre-trained using language modeling on a very large corpus |
| of ~140 GB of text data with the first token reserved as a control code (such as Links, Books, Wikipedia etc.). |
|
|
| The abstract from the paper is the following: |
|
|
| *Large-scale language models show promising text generation capabilities, but users cannot easily control particular |
| aspects of the generated text. We release CTRL, a 1.63 billion-parameter conditional transformer language model, |
| trained to condition on control codes that govern style, content, and task-specific behavior. Control codes were |
| derived from structure that naturally co-occurs with raw text, preserving the advantages of unsupervised learning while |
| providing more explicit control over text generation. These codes also allow CTRL to predict which parts of the |
| training data are most likely given a sequence. This provides a potential method for analyzing large amounts of data |
| via model-based source attribution.* |
|
|
| This model was contributed by [keskarnitishr](https://huggingface.co/keskarnitishr). The original code can be found |
| [here](https://github.com/salesforce/ctrl). |
|
|
| ## Usage tips |
|
|
| - CTRL makes use of control codes to generate text: it requires generations to be started by certain words, sentences |
| or links to generate coherent text. Refer to the [original implementation](https://github.com/salesforce/ctrl) for |
| more information. |
| - CTRL is a model with absolute position embeddings so it's usually advised to pad the inputs on the right rather than |
| the left. |
| - CTRL was trained with a causal language modeling (CLM) objective and is therefore powerful at predicting the next |
| token in a sequence. Leveraging this feature allows CTRL to generate syntactically coherent text as it can be |
| observed in the *run_generation.py* example script. |
| - The PyTorch models can take the `past_key_values` as input, which is the previously computed key/value attention pairs. |
| TensorFlow models accepts `past` as input. Using the `past_key_values` value prevents the model from re-computing |
| pre-computed values in the context of text generation. See the [`forward`](model_doc/ctrl#transformers.CTRLModel.forward) |
| method for more information on the usage of this argument. |
|
|
|
|
| ## Resources |
|
|
| - [Text classification task guide](../tasks/sequence_classification) |
| - [Causal language modeling task guide](../tasks/language_modeling) |
|
|
| ## CTRLConfig |
|
|
| [[autodoc]] CTRLConfig |
|
|
| ## CTRLTokenizer |
|
|
| [[autodoc]] CTRLTokenizer |
| - save_vocabulary |
| |
| <frameworkcontent> |
| <pt> |
| |
| ## CTRLModel |
| |
| [[autodoc]] CTRLModel |
| - forward |
| |
| ## CTRLLMHeadModel |
| |
| [[autodoc]] CTRLLMHeadModel |
| - forward |
| |
| ## CTRLForSequenceClassification |
| |
| [[autodoc]] CTRLForSequenceClassification |
| - forward |
| |
| </pt> |
| <tf> |
| |
| ## TFCTRLModel |
| |
| [[autodoc]] TFCTRLModel |
| - call |
| |
| ## TFCTRLLMHeadModel |
| |
| [[autodoc]] TFCTRLLMHeadModel |
| - call |
| |
| ## TFCTRLForSequenceClassification |
| |
| [[autodoc]] TFCTRLForSequenceClassification |
| - call |
| |
| </tf> |
| </frameworkcontent> |
| |