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title: openai-detector | |
emoji: ๐๏ธ | |
colorFrom: blue | |
colorTo: red | |
sdk: docker | |
# gpt-2-output-dataset | |
This dataset contains: | |
- 250K documents from the WebText test set | |
- For each GPT-2 model (trained on the WebText training set), 250K random samples (temperature 1, no truncation) and 250K samples generated with Top-K 40 truncation | |
We look forward to the research produced using this data! | |
### Download | |
For each model, we have a training split of 250K generated examples, as well as validation and test splits of 5K examples. | |
All data is located in Google Cloud Storage, under the directory `gs://gpt-2/output-dataset/v1`. | |
There, you will find files: | |
- `webtext.${split}.jsonl` | |
- `small-117M.${split}.jsonl` | |
- `small-117M-k40.${split}.jsonl` | |
- `medium-345M.${split}.jsonl` | |
- `medium-345M-k40.${split}.jsonl` | |
- `large-762M.${split}.jsonl` | |
- `large-762M-k40.${split}.jsonl` | |
- `xl-1542M.${split}.jsonl` | |
- `xl-1542M-k40.${split}.jsonl` | |
where split is one of `train`, `test`, and `valid`. | |
We've provided a script to download all of them, in `download_dataset.py`. | |
#### Finetuned model samples | |
Additionally, we encourage research on detection of finetuned models. We have released data under `gs://gpt-2/output-dataset/v1-amazonfinetune/` with samples from a GPT-2 full model finetuned to output Amazon reviews. | |
### Detectability baselines | |
We're interested in seeing research in detectability of GPT-2 model family generations. | |
We provide some [initial analysis](detection.md) of two baselines, as well as [code](./baseline.py) for the better baseline. | |
Overall, we are able to achieve accuracies in the mid-90s for Top-K 40 generations, and mid-70s to high-80s (depending on model size) for random generations. We also find some evidence that adversaries can evade detection via finetuning from released models. | |
### Data removal requests | |
If you believe your work is included in WebText and would like us to remove it, please let us know at [email protected]. | |