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Duplicate from mwsc
Browse filesCo-authored-by: Parquet-converter (BOT) <parquet-converter@users.noreply.huggingface.co>
- .gitattributes +27 -0
- README.md +205 -0
- dataset_infos.json +1 -0
- mwsc.py +121 -0
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README.md
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1 |
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---
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2 |
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annotations_creators:
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- expert-generated
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language:
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- en
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language_creators:
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- expert-generated
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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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pretty_name: Modified Winograd Schema Challenge (MWSC)
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size_categories:
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- n<1K
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source_datasets:
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- extended|winograd_wsc
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task_categories:
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- multiple-choice
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task_ids:
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- multiple-choice-coreference-resolution
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paperswithcode_id: null
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dataset_info:
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features:
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- name: sentence
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dtype: string
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- name: question
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dtype: string
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- name: options
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sequence: string
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- name: answer
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dtype: string
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splits:
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- name: train
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num_bytes: 11022
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num_examples: 80
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- name: test
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num_bytes: 15220
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num_examples: 100
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- name: validation
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num_bytes: 13109
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num_examples: 82
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download_size: 19197
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dataset_size: 39351
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---
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+
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# Dataset Card for The modified Winograd Schema Challenge (MWSC)
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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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51 |
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- [Supported Tasks and Leaderboards](#supported-tasks-and-leaderboards)
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52 |
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- [Languages](#languages)
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53 |
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- [Dataset Structure](#dataset-structure)
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- [Data Instances](#data-instances)
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55 |
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- [Data Fields](#data-fields)
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56 |
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- [Data Splits](#data-splits)
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57 |
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- [Dataset Creation](#dataset-creation)
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58 |
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- [Curation Rationale](#curation-rationale)
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59 |
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- [Source Data](#source-data)
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60 |
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- [Annotations](#annotations)
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61 |
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- [Personal and Sensitive Information](#personal-and-sensitive-information)
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62 |
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- [Considerations for Using the Data](#considerations-for-using-the-data)
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63 |
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- [Social Impact of Dataset](#social-impact-of-dataset)
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64 |
+
- [Discussion of Biases](#discussion-of-biases)
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65 |
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- [Other Known Limitations](#other-known-limitations)
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66 |
+
- [Additional Information](#additional-information)
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67 |
+
- [Dataset Curators](#dataset-curators)
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68 |
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- [Licensing Information](#licensing-information)
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69 |
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- [Citation Information](#citation-information)
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- [Contributions](#contributions)
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## Dataset Description
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+
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- **Homepage:** [http://decanlp.com](http://decanlp.com)
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- **Repository:** https://github.com/salesforce/decaNLP
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- **Paper:** [The Natural Language Decathlon: Multitask Learning as Question Answering](https://arxiv.org/abs/1806.08730)
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- **Point of Contact:** [Bryan McCann](mailto:bmccann@salesforce.com), [Nitish Shirish Keskar](mailto:nkeskar@salesforce.com)
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- **Size of downloaded dataset files:** 19.20 kB
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- **Size of the generated dataset:** 39.35 kB
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- **Total amount of disk used:** 58.55 kB
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### Dataset Summary
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Examples taken from the Winograd Schema Challenge modified to ensure that answers are a single word from the context.
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This Modified Winograd Schema Challenge (MWSC) ensures that scores are neither inflated nor deflated by oddities in phrasing.
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### Supported Tasks and Leaderboards
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88 |
+
|
89 |
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[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
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|
91 |
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### Languages
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92 |
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93 |
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[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
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+
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## Dataset Structure
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### Data Instances
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#### default
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- **Size of downloaded dataset files:** 0.02 MB
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- **Size of the generated dataset:** 0.04 MB
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- **Total amount of disk used:** 0.06 MB
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An example looks as follows:
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```
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{
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"sentence": "The city councilmen refused the demonstrators a permit because they feared violence.",
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"question": "Who feared violence?",
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"options": [ "councilmen", "demonstrators" ],
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"answer": "councilmen"
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}
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```
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### Data Fields
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The data fields are the same among all splits.
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#### default
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- `sentence`: a `string` feature.
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- `question`: a `string` feature.
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- `options`: a `list` of `string` features.
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- `answer`: a `string` feature.
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### Data Splits
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| name |train|validation|test|
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|-------|----:|---------:|---:|
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|default| 80| 82| 100|
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## Dataset Creation
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132 |
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133 |
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### Curation Rationale
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134 |
+
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135 |
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[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
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136 |
+
|
137 |
+
### Source Data
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+
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#### Initial Data Collection and Normalization
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140 |
+
|
141 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
|
142 |
+
|
143 |
+
#### Who are the source language producers?
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+
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[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
|
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+
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+
### Annotations
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148 |
+
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#### Annotation process
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+
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151 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
|
152 |
+
|
153 |
+
#### Who are the annotators?
|
154 |
+
|
155 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
|
156 |
+
|
157 |
+
### Personal and Sensitive Information
|
158 |
+
|
159 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
|
160 |
+
|
161 |
+
## Considerations for Using the Data
|
162 |
+
|
163 |
+
### Social Impact of Dataset
|
164 |
+
|
165 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
|
166 |
+
|
167 |
+
### Discussion of Biases
|
168 |
+
|
169 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
|
170 |
+
|
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+
### Other Known Limitations
|
172 |
+
|
173 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
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## Additional Information
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+
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### Dataset Curators
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178 |
+
|
179 |
+
[More Information Needed](https://github.com/huggingface/datasets/blob/master/CONTRIBUTING.md#how-to-contribute-to-the-dataset-cards)
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+
|
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### Licensing Information
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Our code for running decaNLP has been open sourced under BSD-3-Clause.
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We chose to restrict decaNLP to datasets that were free and publicly accessible for research, but you should check their individual terms if you deviate from this use case.
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From the [Winograd Schema Challenge](https://cs.nyu.edu/~davise/papers/WinogradSchemas/WS.html):
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> Both versions of the collections are licenced under a [Creative Commons Attribution 4.0 International License](http://creativecommons.org/licenses/by/4.0/).
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### Citation Information
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If you use this in your work, please cite:
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```
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@article{McCann2018decaNLP,
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title={The Natural Language Decathlon: Multitask Learning as Question Answering},
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author={Bryan McCann and Nitish Shirish Keskar and Caiming Xiong and Richard Socher},
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journal={arXiv preprint arXiv:1806.08730},
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year={2018}
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}
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```
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### Contributions
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Thanks to [@thomwolf](https://github.com/thomwolf), [@lewtun](https://github.com/lewtun), [@ghomasHudson](https://github.com/ghomasHudson), [@lhoestq](https://github.com/lhoestq) for adding this dataset.
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dataset_infos.json
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{"default": {"description": "Examples taken from the Winograd Schema Challenge modified to ensure that answers are a single word from the context.\nThis modified Winograd Schema Challenge (MWSC) ensures that scores are neither inflated nor deflated by oddities in phrasing.\n", "citation": "@article{McCann2018decaNLP,\n title={The Natural Language Decathlon: Multitask Learning as Question Answering},\n author={Bryan McCann and Nitish Shirish Keskar and Caiming Xiong and Richard Socher},\n journal={arXiv preprint arXiv:1806.08730},\n year={2018}\n}\n", "homepage": "http://decanlp.com", "license": "", "features": {"sentence": {"dtype": "string", "id": null, "_type": "Value"}, "question": {"dtype": "string", "id": null, "_type": "Value"}, "options": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "answer": {"dtype": "string", "id": null, "_type": "Value"}}, "supervised_keys": null, "builder_name": "mwsc", "config_name": "default", "version": {"version_str": "0.1.0", "description": null, "datasets_version_to_prepare": null, "major": 0, "minor": 1, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 11022, "num_examples": 80, "dataset_name": "mwsc"}, "test": {"name": "test", "num_bytes": 15220, "num_examples": 100, "dataset_name": "mwsc"}, "validation": {"name": "validation", "num_bytes": 13109, "num_examples": 82, "dataset_name": "mwsc"}}, "download_checksums": {"https://raw.githubusercontent.com/salesforce/decaNLP/1e9605f246b9e05199b28bde2a2093bc49feeeaa/local_data/schema.txt": {"num_bytes": 19197, "checksum": "31da9bee05796bbe0f6c957f54d1eb82eb5c644a8ee59f2ff1fa890eff3885dd"}}, "download_size": 19197, "dataset_size": 39351, "size_in_bytes": 58548}}
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mwsc.py
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"""A modification of the Winograd Schema Challenge to ensure answers are a single context word"""
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import os
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import re
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import datasets
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_CITATION = """\
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@article{McCann2018decaNLP,
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title={The Natural Language Decathlon: Multitask Learning as Question Answering},
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author={Bryan McCann and Nitish Shirish Keskar and Caiming Xiong and Richard Socher},
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13 |
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journal={arXiv preprint arXiv:1806.08730},
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year={2018}
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}
|
16 |
+
"""
|
17 |
+
|
18 |
+
_DESCRIPTION = """\
|
19 |
+
Examples taken from the Winograd Schema Challenge modified to ensure that answers are a single word from the context.
|
20 |
+
This modified Winograd Schema Challenge (MWSC) ensures that scores are neither inflated nor deflated by oddities in phrasing.
|
21 |
+
"""
|
22 |
+
|
23 |
+
_DATA_URL = "https://raw.githubusercontent.com/salesforce/decaNLP/1e9605f246b9e05199b28bde2a2093bc49feeeaa/local_data/schema.txt"
|
24 |
+
# Alternate: https://s3.amazonaws.com/research.metamind.io/decaNLP/data/schema.txt
|
25 |
+
|
26 |
+
|
27 |
+
class MWSC(datasets.GeneratorBasedBuilder):
|
28 |
+
"""MWSC: modified Winograd Schema Challenge"""
|
29 |
+
|
30 |
+
VERSION = datasets.Version("0.1.0")
|
31 |
+
|
32 |
+
def _info(self):
|
33 |
+
return datasets.DatasetInfo(
|
34 |
+
description=_DESCRIPTION,
|
35 |
+
features=datasets.Features(
|
36 |
+
{
|
37 |
+
"sentence": datasets.Value("string"),
|
38 |
+
"question": datasets.Value("string"),
|
39 |
+
"options": datasets.features.Sequence(datasets.Value("string")),
|
40 |
+
"answer": datasets.Value("string"),
|
41 |
+
}
|
42 |
+
),
|
43 |
+
# If there's a common (input, target) tuple from the features,
|
44 |
+
# specify them here. They'll be used if as_supervised=True in
|
45 |
+
# builder.as_dataset.
|
46 |
+
supervised_keys=None,
|
47 |
+
# Homepage of the dataset for documentation
|
48 |
+
homepage="http://decanlp.com",
|
49 |
+
citation=_CITATION,
|
50 |
+
)
|
51 |
+
|
52 |
+
def _split_generators(self, dl_manager):
|
53 |
+
"""Returns SplitGenerators."""
|
54 |
+
schemas_file = dl_manager.download_and_extract(_DATA_URL)
|
55 |
+
|
56 |
+
if os.path.isdir(schemas_file):
|
57 |
+
# During testing the download manager mock gives us a directory
|
58 |
+
schemas_file = os.path.join(schemas_file, "schema.txt")
|
59 |
+
|
60 |
+
return [
|
61 |
+
datasets.SplitGenerator(
|
62 |
+
name=datasets.Split.TRAIN,
|
63 |
+
gen_kwargs={"filepath": schemas_file, "split": "train"},
|
64 |
+
),
|
65 |
+
datasets.SplitGenerator(
|
66 |
+
name=datasets.Split.TEST,
|
67 |
+
gen_kwargs={"filepath": schemas_file, "split": "test"},
|
68 |
+
),
|
69 |
+
datasets.SplitGenerator(
|
70 |
+
name=datasets.Split.VALIDATION,
|
71 |
+
gen_kwargs={"filepath": schemas_file, "split": "dev"},
|
72 |
+
),
|
73 |
+
]
|
74 |
+
|
75 |
+
def _get_both_schema(self, context):
|
76 |
+
"""Split [option1/option2] into 2 sentences.
|
77 |
+
From https://github.com/salesforce/decaNLP/blob/1e9605f246b9e05199b28bde2a2093bc49feeeaa/text/torchtext/datasets/generic.py#L815-L827"""
|
78 |
+
pattern = r"\[.*\]"
|
79 |
+
variations = [x[1:-1].split("/") for x in re.findall(pattern, context)]
|
80 |
+
splits = re.split(pattern, context)
|
81 |
+
results = []
|
82 |
+
for which_schema in range(2):
|
83 |
+
vs = [v[which_schema] for v in variations]
|
84 |
+
context = ""
|
85 |
+
for idx in range(len(splits)):
|
86 |
+
context += splits[idx]
|
87 |
+
if idx < len(vs):
|
88 |
+
context += vs[idx]
|
89 |
+
results.append(context)
|
90 |
+
return results
|
91 |
+
|
92 |
+
def _generate_examples(self, filepath, split):
|
93 |
+
"""Yields examples."""
|
94 |
+
|
95 |
+
schemas = []
|
96 |
+
with open(filepath, encoding="utf-8") as schema_file:
|
97 |
+
schema = []
|
98 |
+
for line in schema_file:
|
99 |
+
if len(line.split()) == 0:
|
100 |
+
schemas.append(schema)
|
101 |
+
schema = []
|
102 |
+
continue
|
103 |
+
else:
|
104 |
+
schema.append(line.strip())
|
105 |
+
|
106 |
+
# Train/test/dev split from decaNLP code
|
107 |
+
splits = {}
|
108 |
+
traindev = schemas[:-50]
|
109 |
+
splits["test"] = schemas[-50:]
|
110 |
+
splits["train"] = traindev[:40]
|
111 |
+
splits["dev"] = traindev[40:]
|
112 |
+
|
113 |
+
idx = 0
|
114 |
+
for schema in splits[split]:
|
115 |
+
sentence, question, answers = schema
|
116 |
+
sentence = self._get_both_schema(sentence)
|
117 |
+
question = self._get_both_schema(question)
|
118 |
+
answers = answers.split("/")
|
119 |
+
for i in range(2):
|
120 |
+
yield idx, {"sentence": sentence[i], "question": question[i], "options": answers, "answer": answers[i]}
|
121 |
+
idx += 1
|