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metadata
license: cc-by-nc-sa-4.0
dataset_info:
  - config_name: anl-news
    features:
      - name: text
        dtype: string
    splits:
      - name: train
        num_bytes: 1500707584
        num_examples: 236443
    download_size: 773593491
    dataset_size: 1500707584
  - config_name: azwiki
    features:
      - name: id
        dtype: int64
      - name: text
        dtype: string
      - name: title
        dtype: string
    splits:
      - name: train
        num_bytes: 360206818
        num_examples: 129433
    download_size: 204669909
    dataset_size: 360206818
  - config_name: bhos
    features:
      - name: title
        dtype: string
      - name: text
        dtype: string
      - name: id
        dtype: int64
    splits:
      - name: train
        num_bytes: 736156688
        num_examples: 488390
    download_size: 417517945
    dataset_size: 736156688
  - config_name: elite-blogs
    features:
      - name: id
        dtype: int64
      - name: source
        dtype: string
      - name: text
        dtype: string
    splits:
      - name: train
        num_bytes: 7625261
        num_examples: 755
    download_size: 4031201
    dataset_size: 7625261
  - config_name: elite-books
    features:
      - name: text
        dtype: string
      - name: id
        dtype: int64
    splits:
      - name: train
        num_bytes: 38894982
        num_examples: 104
    download_size: 22016093
    dataset_size: 38894982
  - config_name: eqanun
    features:
      - name: text
        dtype: string
      - name: title
        dtype: string
      - name: id
        dtype: int64
    splits:
      - name: train
        num_bytes: 404638424
        num_examples: 53656
    download_size: 149151917
    dataset_size: 404638424
  - config_name: mediocore-books
    features:
      - name: ID
        dtype: string
      - name: ' Metadata'
        dtype: string
      - name: text
        dtype: string
    splits:
      - name: train
        num_bytes: 2908183660
        num_examples: 7807263
    download_size: 695603782
    dataset_size: 2908183660
  - config_name: translated-enwiki
    features:
      - name: text
        dtype: string
    splits:
      - name: train
        num_bytes: 1629190007
        num_examples: 280465
    download_size: 919526548
    dataset_size: 1629190007
configs:
  - config_name: anl-news
    data_files:
      - split: train
        path: anl-news/train-*
  - config_name: azwiki
    data_files:
      - split: train
        path: azwiki/train-*
  - config_name: bhos
    data_files:
      - split: train
        path: bhos/train-*
  - config_name: elite-blogs
    data_files:
      - split: train
        path: elite-blogs/train-*
  - config_name: elite-books
    data_files:
      - split: train
        path: elite-books/train-*
  - config_name: eqanun
    data_files:
      - split: train
        path: eqanun/train-*
  - config_name: mediocore-books
    data_files:
      - split: train
        path: mediocore-books/train-*
  - config_name: translated-enwiki
    data_files:
      - split: train
        path: translated-enwiki/train-*
task_categories:
  - fill-mask
language:
  - az
size_categories:
  - 1M<n<10M

If you use this dataset, please cite us:

@inproceedings{isbarov-etal-2024-open,
    title = "Open foundation models for {A}zerbaijani language",
    author = "Isbarov, Jafar  and
      Huseynova, Kavsar  and
      Mammadov, Elvin  and
      Hajili, Mammad and
      Ataman, Duygu",
    editor = {Ataman, Duygu  and
      Derin, Mehmet Oguz  and
      Ivanova, Sardana  and
      K{\"o}ksal, Abdullatif  and
      S{\"a}lev{\"a}, Jonne  and
      Zeyrek, Deniz},
    booktitle = "Proceedings of the First Workshop on Natural Language Processing for Turkic Languages (SIGTURK 2024)",
    month = aug,
    year = "2024",
    address = "Bangkok, Thailand and Online",
    publisher = "Association for Computational Linguistics",
    url = "https://aclanthology.org/2024.sigturk-1.2",
    pages = "18--28",
    abstract = "The emergence of multilingual large language models has enabled the development of language understanding and generation systems in Azerbaijani. However, most of the production-grade systems rely on cloud solutions, such as GPT-4. While there have been several attempts to develop open foundation models for Azerbaijani, these works have not found their way into common use due to a lack of systemic benchmarking. This paper encompasses several lines of work that promote open-source foundation models for Azerbaijani. We introduce (1) a large text corpus for Azerbaijani, (2) a family of encoder-only language models trained on this dataset, (3) labeled datasets for evaluating these models, and (4) extensive evaluation that covers all major open-source models with Azerbaijani support.",
}

https://arxiv.org/abs/2407.02337