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metadata
dataset_info:
  features:
    - name: input_ids
      sequence: int32
  splits:
    - name: train
      num_bytes: 22274051772
      num_examples: 43166767
  download_size: 12187746609
  dataset_size: 22274051772
  annotations_creators:
    - no-annotation
  language_creators:
    - found
  language:
    - en
  license: other
  multilinguality:
    - monolingual
  pretty_name: pretokenized,filtered,sorted subset of the Pile
  size_categories:
    - 10B<n<100B
  source_datasets:
    - the-pile
  task_categories:
    - text-generation
    - fill-mask
  task_ids:
    - language-modeling
    - masked-language-modeling
  paperswithcode_id: the-pile-cramming

Dataset Card for the_pile_WordPiecex32768_97b8e776baafb99c3892e6572a9f51b3

This is a preprocessed, tokenized dataset for the cramming-project.

Use only with the tokenizer uploaded here. This version is 97b8e776baafb99c3892e6572a9f51b3, which corresponds to a specific dataset construction setup, described below. The raw data source is the Pile, a 825 GiB diverse, open source language modelling data set that consists of 22 smaller, high-quality datasets combined together.

Dataset Description

Languages

This dataset is in tokenized English (EN).

Data Splits

This preprocessed subset contains only a train split.

Dataset Creation

The configuration to create this dataset with the cramming project code (https://github.com/JonasGeiping/cramming) is

name: the_pile
defaults:
  - sources:
      - the_pile


# Preprocessing
normalizer:
  force_lowercase: True
  strip_accents: True
  force_english_keyboard: True
  whitespace_escape: False
tokenizer: WordPiece
vocab_size: 32768

# Dataset Formation
seq_length: 128
include_cls_token_in_corpus: False
include_sep_token_in_corpus: True
use_type_ids: False
max_entries_in_raw_dataset: 16e6 
max_seq_in_tokenized_dataset: 85e6 

# Data Cleaning:
named_entity_simplification: False
remove_whitespaces: False
remove_trash: True
trash_cutoff: 0.25
deduplicate_entries: False
deduplication_threshold: 75

# Data Order:
ordering: sentence-length-curriculum

Considerations for Using the Data

Limitations and bias: This training data was further filtered and sorted beyond the normal preprocessing. These modifications were not tested for unintended consequences.

Additional Information

Dataset Curators

This dataset is a filtered, sorted and preprocessed subset of the the-Pile made by Jonas Geiping . The original dataset was primarily curated by Leo Gao and Stella Biderman, with assistance from other authors of the Pile paper.

Licensing Information

Please refer to the specific license depending on the subset you use at https://huggingface.co/datasets/EleutherAI/pile

Citation Information

Filtered version for the cramming project:

@article{geiping_cramming_2022,
  title = {Cramming: {{Training}} a {{Language Model}} on a {{Single GPU}} in {{One Day}}},
  shorttitle = {Cramming},
  author = {Geiping, Jonas and Goldstein, Tom},
  year = {2022},
  month = dec,
  eprint = {2212.14034},
  primaryclass = {cs},
  publisher = {{arXiv}},
  doi = {10.48550/arXiv.2212.14034},
  url = {http://arxiv.org/abs/2212.14034},
  urldate = {2023-01-10},
  archiveprefix = {arxiv},
  keywords = {Computer Science - Computation and Language,Computer Science - Machine Learning},
  journal = {arxiv:2212.14034[cs]}
}

Original Data Curation:

@article{gao2020pile,
  title={The {P}ile: An 800{GB} dataset of diverse text for language modeling},
  author={Gao, Leo and Biderman, Stella and Black, Sid and Golding, Laurence and Hoppe, Travis and Foster, Charles and Phang, Jason and He, Horace and Thite, Anish and Nabeshima, Noa and others},
  journal={arXiv preprint arXiv:2101.00027},
  year={2020}
}
@article{biderman2022datasheet,
  title={Datasheet for the pile},
  author={Biderman, Stella and Bicheno, Kieran and Gao, Leo},
  journal={arXiv preprint arXiv:2201.07311},
  year={2022}
}