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--- |
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annotations_creators: |
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- machine-generated |
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language_creators: |
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- machine-generated |
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language: |
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- en |
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license: |
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- cc-by-4.0 |
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multilinguality: |
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- monolingual |
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size_categories: |
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trex: |
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- 1M<n<10M |
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task_categories: |
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- text-retrieval |
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- text-classification |
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task_ids: |
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- fact-checking-retrieval |
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- text-scoring |
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paperswithcode_id: lama |
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pretty_name: 'LAMA: LAnguage Model Analysis - BigScience version' |
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tags: |
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- probing |
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--- |
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# Dataset Card for LAMA: LAnguage Model Analysis - a dataset for probing and analyzing the factual and commonsense knowledge contained in pretrained language models. |
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## Table of Contents |
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- [Dataset Description](#dataset-description) |
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- [Dataset Summary](#dataset-summary) |
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- [Supported Tasks and Leaderboards](#supported-tasks-and-leaderboards) |
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- [Languages](#languages) |
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- [Dataset Structure](#dataset-structure) |
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- [Data Instances](#data-instances) |
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- [Data Fields](#data-fields) |
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- [Data Splits](#data-splits) |
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- [Dataset Creation](#dataset-creation) |
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- [Curation Rationale](#curation-rationale) |
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- [Source Data](#source-data) |
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- [Annotations](#annotations) |
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- [Personal and Sensitive Information](#personal-and-sensitive-information) |
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- [Considerations for Using the Data](#considerations-for-using-the-data) |
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- [Social Impact of Dataset](#social-impact-of-dataset) |
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- [Discussion of Biases](#discussion-of-biases) |
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- [Other Known Limitations](#other-known-limitations) |
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- [Additional Information](#additional-information) |
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- [Dataset Curators](#dataset-curators) |
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- [Licensing Information](#licensing-information) |
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- [Citation Information](#citation-information) |
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## Dataset Description |
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- **Homepage:** |
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https://github.com/facebookresearch/LAMA |
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- **Repository:** |
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https://github.com/facebookresearch/LAMA |
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- **Paper:** |
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@inproceedings{petroni2019language, |
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title={Language Models as Knowledge Bases?}, |
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author={F. Petroni, T. Rockt{\"{a}}schel, A. H. Miller, P. Lewis, A. Bakhtin, Y. Wu and S. Riedel}, |
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booktitle={In: Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing (EMNLP), 2019}, |
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year={2019} |
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} |
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@inproceedings{petroni2020how, |
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title={How Context Affects Language Models' Factual Predictions}, |
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author={Fabio Petroni and Patrick Lewis and Aleksandra Piktus and Tim Rockt{\"a}schel and Yuxiang Wu and Alexander H. Miller and Sebastian Riedel}, |
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booktitle={Automated Knowledge Base Construction}, |
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year={2020}, |
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url={https://openreview.net/forum?id=025X0zPfn} |
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} |
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### Dataset Summary |
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This dataset provides the data for LAMA. This dataset only contains TRex |
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(subset of wikidata triples). |
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The dataset includes some cleanup, and addition of a masked sentence |
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and associated answers for the [MASK] token. The accuracy in |
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predicting the [MASK] token shows how well the language model knows |
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facts and common sense information. The [MASK] tokens are only for the |
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"object" slots. |
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This version also contains questions instead of templates that can be used to probe also non-masking models. |
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See the paper for more details. For more information, also see: |
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https://github.com/facebookresearch/LAMA |
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### Languages |
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en |
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## Dataset Structure |
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### Data Instances |
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The trex config has the following fields: |
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`` |
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{'uuid': 'a37257ae-4cbb-4309-a78a-623036c96797', 'sub_label': 'Pianos Become the Teeth', 'predicate_id': 'P740', 'obj_label': 'Baltimore', 'template': '[X] was founded in [Y] .', 'type': 'N-1', 'question': 'Where was [X] founded?'} |
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34039 |
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`` |
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### Data Splits |
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There are no data splits. |
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## Dataset Creation |
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### Curation Rationale |
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This dataset was gathered and created to probe what language models understand. |
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### Source Data |
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#### Initial Data Collection and Normalization |
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See the reaserch paper and website for more detail. The dataset was |
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created gathered from various other datasets with cleanups for probing. |
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#### Who are the source language producers? |
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The LAMA authors and the original authors of the various configs. |
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### Annotations |
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#### Annotation process |
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Human annotations under the original datasets (conceptnet), and various machine annotations. |
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#### Who are the annotators? |
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Human annotations and machine annotations. |
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### Personal and Sensitive Information |
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Unkown, but likely names of famous people. |
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## Considerations for Using the Data |
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### Social Impact of Dataset |
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The goal for the work is to probe the understanding of language models. |
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### Discussion of Biases |
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Since the data is from human annotators, there is likely to be baises. |
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[More Information Needed] |
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### Other Known Limitations |
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The original documentation for the datafields are limited. |
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## Additional Information |
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### Dataset Curators |
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The authors of LAMA at Facebook and the authors of the original datasets. |
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### Licensing Information |
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The Creative Commons Attribution-Noncommercial 4.0 International License. see https://github.com/facebookresearch/LAMA/blob/master/LICENSE |
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### Citation Information |
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|
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@inproceedings{petroni2019language, |
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title={Language Models as Knowledge Bases?}, |
|
author={F. Petroni, T. Rockt{\"{a}}schel, A. H. Miller, P. Lewis, A. Bakhtin, Y. Wu and S. Riedel}, |
|
booktitle={In: Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing (EMNLP), 2019}, |
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year={2019} |
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} |
|
|
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@inproceedings{petroni2020how, |
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title={How Context Affects Language Models' Factual Predictions}, |
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author={Fabio Petroni and Patrick Lewis and Aleksandra Piktus and Tim Rockt{\"a}schel and Yuxiang Wu and Alexander H. Miller and Sebastian Riedel}, |
|
booktitle={Automated Knowledge Base Construction}, |
|
year={2020}, |
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url={https://openreview.net/forum?id=025X0zPfn} |
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} |
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