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cglez/gpt2-dapt-imdb
gpt2-dapt-imdb is a text generation model from cglez. Use it when you need the model to write or continue text. It is set up for transformers. The card lists the license as mit.
A domain-adapted GPT-2, further pre-trained on the IMDb dataset text.
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From the Hugging Face model README
A domain-adapted GPT-2, further pre-trained on the IMDb dataset text.
This model is based on the GPT-2 architecture and was further pre-trained (domain-adapted) using the text in IMDb dataset, excluding its test split.
Intermediate checkpoints from the pre-training process are available and can be accessed using specific tags, which correspond to training epochs and steps:
| Epoch | Step | Tags | |
|---|---|---|---|
| 1 | 703 | epoch-1 | step-703 |
| 5 | 3515 | epoch-5 | step-3515 |
| 10 | 7031 | epoch-10 | step-7031 |
| 20 | 14063 | epoch-20 | step-14063 |
| 30 | 21095 | epoch-30 | step-21095 |
| 40 | 28126 | epoch-40 | step-28126 |
| 50 | 35150 | epoch-50 | step-35150 |
| 60 | 42182 | epoch-60 | step-42182 |
| 70 | 49214 | epoch-70 | step-49214 |
| 80 | 56240 | epoch-80 | step-56240 |
To load a model from a specific intermediate checkpoint, use the revision parameter with the corresponding tag:
from transformers import AutoModelForCausalLM
model = AutoModelForMaskedLM.from_pretrained("<model-name>", revision="<checkpoint-tag>")
For more details on the training procedure, please refer to the base model's documentation: Training procedure.
All texts from IMDb dataset, excluding the test partition.
[More Information Needed]
For typical use cases and limitations, please refer to the base model's guidance: Inteded uses & limitations.
This model inherits potential risks and limitations from the base model. Refer to: Limitations and bias.
BibTeX:
[More Information Needed]