Datasets:
Tasks:
Question Answering
Modalities:
Text
Sub-tasks:
multiple-choice-qa
Languages:
English
Size:
1M - 10M
ArXiv:
License:
Clémentine
commited on
Commit
•
27d6bc8
1
Parent(s):
0a46935
init
Browse files- .gitattributes +1 -0
- README.md +1836 -0
- data.tar +3 -0
- dataset_infos.json +0 -0
- mmlu.py +171 -0
.gitattributes
CHANGED
@@ -52,3 +52,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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*.jpg filter=lfs diff=lfs merge=lfs -text
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*.jpeg filter=lfs diff=lfs merge=lfs -text
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*.webp filter=lfs diff=lfs merge=lfs -text
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*.jpg filter=lfs diff=lfs merge=lfs -text
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*.jpeg filter=lfs diff=lfs merge=lfs -text
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*.webp filter=lfs diff=lfs merge=lfs -text
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+
*.tar filter=lfs diff=lfs merge=lfs -text
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README.md
ADDED
@@ -0,0 +1,1836 @@
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|
1 |
+
---
|
2 |
+
annotations_creators:
|
3 |
+
- no-annotation
|
4 |
+
language_creators:
|
5 |
+
- expert-generated
|
6 |
+
language:
|
7 |
+
- en
|
8 |
+
license:
|
9 |
+
- mit
|
10 |
+
multilinguality:
|
11 |
+
- monolingual
|
12 |
+
size_categories:
|
13 |
+
- 10K<n<100K
|
14 |
+
source_datasets:
|
15 |
+
- original
|
16 |
+
task_categories:
|
17 |
+
- question-answering
|
18 |
+
task_ids:
|
19 |
+
- multiple-choice-qa
|
20 |
+
paperswithcode_id: mmlu
|
21 |
+
pretty_name: Measuring Massive Multitask Language Understanding
|
22 |
+
language_bcp47:
|
23 |
+
- en-US
|
24 |
+
dataset_info:
|
25 |
+
- config_name: abstract_algebra
|
26 |
+
features:
|
27 |
+
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28 |
+
dtype: string
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29 |
+
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+
sequence: string
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31 |
+
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|
32 |
+
dtype:
|
33 |
+
class_label:
|
34 |
+
names:
|
35 |
+
'0': A
|
36 |
+
'1': B
|
37 |
+
'2': C
|
38 |
+
'3': D
|
39 |
+
splits:
|
40 |
+
- name: auxiliary_train
|
41 |
+
num_bytes: 160601377
|
42 |
+
num_examples: 99842
|
43 |
+
- name: test
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44 |
+
num_bytes: 19328
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45 |
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num_examples: 100
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46 |
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47 |
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49 |
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50 |
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51 |
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num_examples: 5
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52 |
+
download_size: 166184960
|
53 |
+
dataset_size: 160623559
|
54 |
+
- config_name: anatomy
|
55 |
+
features:
|
56 |
+
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|
57 |
+
dtype: string
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58 |
+
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59 |
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sequence: string
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60 |
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61 |
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62 |
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63 |
+
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64 |
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65 |
+
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66 |
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67 |
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68 |
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splits:
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69 |
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70 |
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num_bytes: 160601377
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71 |
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num_examples: 99842
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72 |
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73 |
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75 |
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76 |
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78 |
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79 |
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80 |
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81 |
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download_size: 166184960
|
82 |
+
dataset_size: 160638605
|
83 |
+
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|
84 |
+
features:
|
85 |
+
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86 |
+
dtype: string
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87 |
+
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95 |
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96 |
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97 |
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splits:
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98 |
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99 |
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num_bytes: 160601377
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100 |
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num_examples: 99842
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101 |
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102 |
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104 |
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105 |
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107 |
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108 |
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109 |
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num_examples: 5
|
110 |
+
download_size: 166184960
|
111 |
+
dataset_size: 160655251
|
112 |
+
- config_name: business_ethics
|
113 |
+
features:
|
114 |
+
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115 |
+
dtype: string
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116 |
+
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sequence: string
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121 |
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122 |
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124 |
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125 |
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126 |
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127 |
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128 |
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130 |
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139 |
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download_size: 166184960
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140 |
+
dataset_size: 160639857
|
141 |
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- config_name: clinical_knowledge
|
142 |
+
features:
|
143 |
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|
144 |
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166 |
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num_examples: 5
|
168 |
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download_size: 166184960
|
169 |
+
dataset_size: 160672005
|
170 |
+
- config_name: college_biology
|
171 |
+
features:
|
172 |
+
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|
173 |
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dtype: string
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174 |
+
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num_bytes: 160601377
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download_size: 166184960
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198 |
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dataset_size: 160656525
|
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- config_name: college_chemistry
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201 |
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download_size: 166184960
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---
|
1679 |
+
|
1680 |
+
# Dataset Card for MMLU
|
1681 |
+
|
1682 |
+
## Table of Contents
|
1683 |
+
- [Table of Contents](#table-of-contents)
|
1684 |
+
- [Dataset Description](#dataset-description)
|
1685 |
+
- [Dataset Summary](#dataset-summary)
|
1686 |
+
- [Supported Tasks and Leaderboards](#supported-tasks-and-leaderboards)
|
1687 |
+
- [Languages](#languages)
|
1688 |
+
- [Dataset Structure](#dataset-structure)
|
1689 |
+
- [Data Instances](#data-instances)
|
1690 |
+
- [Data Fields](#data-fields)
|
1691 |
+
- [Data Splits](#data-splits)
|
1692 |
+
- [Dataset Creation](#dataset-creation)
|
1693 |
+
- [Curation Rationale](#curation-rationale)
|
1694 |
+
- [Source Data](#source-data)
|
1695 |
+
- [Annotations](#annotations)
|
1696 |
+
- [Personal and Sensitive Information](#personal-and-sensitive-information)
|
1697 |
+
- [Considerations for Using the Data](#considerations-for-using-the-data)
|
1698 |
+
- [Social Impact of Dataset](#social-impact-of-dataset)
|
1699 |
+
- [Discussion of Biases](#discussion-of-biases)
|
1700 |
+
- [Other Known Limitations](#other-known-limitations)
|
1701 |
+
- [Additional Information](#additional-information)
|
1702 |
+
- [Dataset Curators](#dataset-curators)
|
1703 |
+
- [Licensing Information](#licensing-information)
|
1704 |
+
- [Citation Information](#citation-information)
|
1705 |
+
- [Contributions](#contributions)
|
1706 |
+
|
1707 |
+
## Dataset Description
|
1708 |
+
|
1709 |
+
- **Repository**: https://github.com/hendrycks/test
|
1710 |
+
- **Paper**: https://arxiv.org/abs/2009.03300
|
1711 |
+
|
1712 |
+
### Dataset Summary
|
1713 |
+
|
1714 |
+
[Measuring Massive Multitask Language Understanding](https://arxiv.org/pdf/2009.03300) by [Dan Hendrycks](https://people.eecs.berkeley.edu/~hendrycks/), [Collin Burns](http://collinpburns.com), [Steven Basart](https://stevenbas.art), Andy Zou, Mantas Mazeika, [Dawn Song](https://people.eecs.berkeley.edu/~dawnsong/), and [Jacob Steinhardt](https://www.stat.berkeley.edu/~jsteinhardt/) (ICLR 2021).
|
1715 |
+
|
1716 |
+
This is a massive multitask test consisting of multiple-choice questions from various branches of knowledge. The test spans subjects in the humanities, social sciences, hard sciences, and other areas that are important for some people to learn. This covers 57 tasks including elementary mathematics, US history, computer science, law, and more. To attain high accuracy on this test, models must possess extensive world knowledge and problem solving ability.
|
1717 |
+
|
1718 |
+
A complete list of tasks: ['abstract_algebra', 'anatomy', 'astronomy', 'business_ethics', 'clinical_knowledge', 'college_biology', 'college_chemistry', 'college_computer_science', 'college_mathematics', 'college_medicine', 'college_physics', 'computer_security', 'conceptual_physics', 'econometrics', 'electrical_engineering', 'elementary_mathematics', 'formal_logic', 'global_facts', 'high_school_biology', 'high_school_chemistry', 'high_school_computer_science', 'high_school_european_history', 'high_school_geography', 'high_school_government_and_politics', 'high_school_macroeconomics', 'high_school_mathematics', 'high_school_microeconomics', 'high_school_physics', 'high_school_psychology', 'high_school_statistics', 'high_school_us_history', 'high_school_world_history', 'human_aging', 'human_sexuality', 'international_law', 'jurisprudence', 'logical_fallacies', 'machine_learning', 'management', 'marketing', 'medical_genetics', 'miscellaneous', 'moral_disputes', 'moral_scenarios', 'nutrition', 'philosophy', 'prehistory', 'professional_accounting', 'professional_law', 'professional_medicine', 'professional_psychology', 'public_relations', 'security_studies', 'sociology', 'us_foreign_policy', 'virology', 'world_religions']
|
1719 |
+
|
1720 |
+
### Supported Tasks and Leaderboards
|
1721 |
+
|
1722 |
+
| Model | Authors | Humanities | Social Science | STEM | Other | Average |
|
1723 |
+
|------------------------------------|----------|:-------:|:-------:|:-------:|:-------:|:-------:|
|
1724 |
+
| [UnifiedQA](https://arxiv.org/abs/2005.00700) | Khashabi et al., 2020 | 45.6 | 56.6 | 40.2 | 54.6 | 48.9
|
1725 |
+
| [GPT-3](https://arxiv.org/abs/2005.14165) (few-shot) | Brown et al., 2020 | 40.8 | 50.4 | 36.7 | 48.8 | 43.9
|
1726 |
+
| [GPT-2](https://arxiv.org/abs/2005.14165) | Radford et al., 2019 | 32.8 | 33.3 | 30.2 | 33.1 | 32.4
|
1727 |
+
| Random Baseline | N/A | 25.0 | 25.0 | 25.0 | 25.0 | 25.0 | 25.0
|
1728 |
+
|
1729 |
+
### Languages
|
1730 |
+
|
1731 |
+
English
|
1732 |
+
|
1733 |
+
## Dataset Structure
|
1734 |
+
|
1735 |
+
### Data Instances
|
1736 |
+
|
1737 |
+
An example from anatomy subtask looks as follows:
|
1738 |
+
```
|
1739 |
+
{
|
1740 |
+
"question": "What is the embryological origin of the hyoid bone?",
|
1741 |
+
"choices": ["The first pharyngeal arch", "The first and second pharyngeal arches", "The second pharyngeal arch", "The second and third pharyngeal arches"],
|
1742 |
+
"answer": "D"
|
1743 |
+
}
|
1744 |
+
```
|
1745 |
+
|
1746 |
+
### Data Fields
|
1747 |
+
|
1748 |
+
- `question`: a string feature
|
1749 |
+
- `choices`: a list of 4 string features
|
1750 |
+
- `answer`: a ClassLabel feature
|
1751 |
+
|
1752 |
+
### Data Splits
|
1753 |
+
|
1754 |
+
- `auxiliary_train`: auxiliary multiple-choice training questions from ARC, MC_TEST, OBQA, RACE, etc.
|
1755 |
+
- `dev`: 5 examples per subtask, meant for few-shot setting
|
1756 |
+
- `test`: there are at least 100 examples per subtask
|
1757 |
+
|
1758 |
+
| | auxiliary_train | dev | val | test |
|
1759 |
+
| ----- | :------: | :-----: | :-----: | :-----: |
|
1760 |
+
| TOTAL | 99842 | 285 | 1531 | 14042
|
1761 |
+
|
1762 |
+
## Dataset Creation
|
1763 |
+
|
1764 |
+
### Curation Rationale
|
1765 |
+
|
1766 |
+
Transformer models have driven this recent progress by pretraining on massive text corpora, including all of Wikipedia, thousands of books, and numerous websites. These models consequently see extensive information about specialized topics, most of which is not assessed by existing NLP benchmarks. To bridge the gap between the wide-ranging knowledge that models see during pretraining and the existing measures of success, we introduce a new benchmark for assessing models across a diverse set of subjects that humans learn.
|
1767 |
+
|
1768 |
+
### Source Data
|
1769 |
+
|
1770 |
+
#### Initial Data Collection and Normalization
|
1771 |
+
|
1772 |
+
[More Information Needed]
|
1773 |
+
|
1774 |
+
#### Who are the source language producers?
|
1775 |
+
|
1776 |
+
[More Information Needed]
|
1777 |
+
|
1778 |
+
### Annotations
|
1779 |
+
|
1780 |
+
#### Annotation process
|
1781 |
+
|
1782 |
+
[More Information Needed]
|
1783 |
+
|
1784 |
+
#### Who are the annotators?
|
1785 |
+
|
1786 |
+
[More Information Needed]
|
1787 |
+
|
1788 |
+
### Personal and Sensitive Information
|
1789 |
+
|
1790 |
+
[More Information Needed]
|
1791 |
+
|
1792 |
+
## Considerations for Using the Data
|
1793 |
+
|
1794 |
+
### Social Impact of Dataset
|
1795 |
+
|
1796 |
+
[More Information Needed]
|
1797 |
+
|
1798 |
+
### Discussion of Biases
|
1799 |
+
|
1800 |
+
[More Information Needed]
|
1801 |
+
|
1802 |
+
### Other Known Limitations
|
1803 |
+
|
1804 |
+
[More Information Needed]
|
1805 |
+
|
1806 |
+
## Additional Information
|
1807 |
+
|
1808 |
+
### Dataset Curators
|
1809 |
+
|
1810 |
+
[More Information Needed]
|
1811 |
+
|
1812 |
+
### Licensing Information
|
1813 |
+
|
1814 |
+
[MIT License](https://github.com/hendrycks/test/blob/master/LICENSE)
|
1815 |
+
|
1816 |
+
### Citation Information
|
1817 |
+
|
1818 |
+
If you find this useful in your research, please consider citing the test and also the [ETHICS](https://arxiv.org/abs/2008.02275) dataset it draws from:
|
1819 |
+
```
|
1820 |
+
@article{hendryckstest2021,
|
1821 |
+
title={Measuring Massive Multitask Language Understanding},
|
1822 |
+
author={Dan Hendrycks and Collin Burns and Steven Basart and Andy Zou and Mantas Mazeika and Dawn Song and Jacob Steinhardt},
|
1823 |
+
journal={Proceedings of the International Conference on Learning Representations (ICLR)},
|
1824 |
+
year={2021}
|
1825 |
+
}
|
1826 |
+
|
1827 |
+
@article{hendrycks2021ethics,
|
1828 |
+
title={Aligning AI With Shared Human Values},
|
1829 |
+
author={Dan Hendrycks and Collin Burns and Steven Basart and Andrew Critch and Jerry Li and Dawn Song and Jacob Steinhardt},
|
1830 |
+
journal={Proceedings of the International Conference on Learning Representations (ICLR)},
|
1831 |
+
year={2021}
|
1832 |
+
}
|
1833 |
+
```
|
1834 |
+
### Contributions
|
1835 |
+
|
1836 |
+
Thanks to [@andyzoujm](https://github.com/andyzoujm) for adding this dataset.
|
data.tar
ADDED
@@ -0,0 +1,3 @@
|
|
|
|
|
|
|
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|
1 |
+
version https://git-lfs.github.com/spec/v1
|
2 |
+
oid sha256:bec563ba4bac1d6aaf04141cd7d1605d7a5ca833e38f994051e818489592989b
|
3 |
+
size 166184960
|
dataset_infos.json
ADDED
The diff for this file is too large to render.
See raw diff
|
|
mmlu.py
ADDED
@@ -0,0 +1,171 @@
|
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|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
# coding=utf-8
|
2 |
+
# Copyright 2020 The HuggingFace Datasets Authors and the current dataset script contributor.
|
3 |
+
#
|
4 |
+
# Licensed under the Apache License, Version 2.0 (the "License");
|
5 |
+
# you may not use this file except in compliance with the License.
|
6 |
+
# You may obtain a copy of the License at
|
7 |
+
#
|
8 |
+
# http://www.apache.org/licenses/LICENSE-2.0
|
9 |
+
#
|
10 |
+
# Unless required by applicable law or agreed to in writing, software
|
11 |
+
# distributed under the License is distributed on an "AS IS" BASIS,
|
12 |
+
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
|
13 |
+
# See the License for the specific language governing permissions and
|
14 |
+
# limitations under the License.
|
15 |
+
|
16 |
+
|
17 |
+
import csv
|
18 |
+
|
19 |
+
import datasets
|
20 |
+
|
21 |
+
|
22 |
+
_CITATION = """\
|
23 |
+
@article{hendryckstest2021,
|
24 |
+
title={Measuring Massive Multitask Language Understanding},
|
25 |
+
author={Dan Hendrycks and Collin Burns and Steven Basart and Andy Zou and Mantas Mazeika and Dawn Song and Jacob Steinhardt},
|
26 |
+
journal={Proceedings of the International Conference on Learning Representations (ICLR)},
|
27 |
+
year={2021}
|
28 |
+
}
|
29 |
+
"""
|
30 |
+
|
31 |
+
_DESCRIPTION = """\
|
32 |
+
This is a massive multitask test consisting of multiple-choice questions from various branches of knowledge, covering 57 tasks including elementary mathematics, US history, computer science, law, and more.
|
33 |
+
"""
|
34 |
+
|
35 |
+
_HOMEPAGE = "https://github.com/hendrycks/test"
|
36 |
+
|
37 |
+
_URL = "data.tar"
|
38 |
+
|
39 |
+
_SUBJECTS = [
|
40 |
+
"all",
|
41 |
+
"abstract_algebra",
|
42 |
+
"anatomy",
|
43 |
+
"astronomy",
|
44 |
+
"business_ethics",
|
45 |
+
"clinical_knowledge",
|
46 |
+
"college_biology",
|
47 |
+
"college_chemistry",
|
48 |
+
"college_computer_science",
|
49 |
+
"college_mathematics",
|
50 |
+
"college_medicine",
|
51 |
+
"college_physics",
|
52 |
+
"computer_security",
|
53 |
+
"conceptual_physics",
|
54 |
+
"econometrics",
|
55 |
+
"electrical_engineering",
|
56 |
+
"elementary_mathematics",
|
57 |
+
"formal_logic",
|
58 |
+
"global_facts",
|
59 |
+
"high_school_biology",
|
60 |
+
"high_school_chemistry",
|
61 |
+
"high_school_computer_science",
|
62 |
+
"high_school_european_history",
|
63 |
+
"high_school_geography",
|
64 |
+
"high_school_government_and_politics",
|
65 |
+
"high_school_macroeconomics",
|
66 |
+
"high_school_mathematics",
|
67 |
+
"high_school_microeconomics",
|
68 |
+
"high_school_physics",
|
69 |
+
"high_school_psychology",
|
70 |
+
"high_school_statistics",
|
71 |
+
"high_school_us_history",
|
72 |
+
"high_school_world_history",
|
73 |
+
"human_aging",
|
74 |
+
"human_sexuality",
|
75 |
+
"international_law",
|
76 |
+
"jurisprudence",
|
77 |
+
"logical_fallacies",
|
78 |
+
"machine_learning",
|
79 |
+
"management",
|
80 |
+
"marketing",
|
81 |
+
"medical_genetics",
|
82 |
+
"miscellaneous",
|
83 |
+
"moral_disputes",
|
84 |
+
"moral_scenarios",
|
85 |
+
"nutrition",
|
86 |
+
"philosophy",
|
87 |
+
"prehistory",
|
88 |
+
"professional_accounting",
|
89 |
+
"professional_law",
|
90 |
+
"professional_medicine",
|
91 |
+
"professional_psychology",
|
92 |
+
"public_relations",
|
93 |
+
"security_studies",
|
94 |
+
"sociology",
|
95 |
+
"us_foreign_policy",
|
96 |
+
"virology",
|
97 |
+
"world_religions",
|
98 |
+
]
|
99 |
+
|
100 |
+
|
101 |
+
class Mmlu(datasets.GeneratorBasedBuilder):
|
102 |
+
"""Measuring Massive Multitask Language Understanding, consisting of 57 tasks"""
|
103 |
+
|
104 |
+
BUILDER_CONFIGS = [
|
105 |
+
datasets.BuilderConfig(
|
106 |
+
name=sub, version=datasets.Version("1.0.0"), description=f"MMLU Subject {sub}"
|
107 |
+
)
|
108 |
+
for sub in _SUBJECTS
|
109 |
+
]
|
110 |
+
|
111 |
+
def _info(self):
|
112 |
+
features = datasets.Features(
|
113 |
+
{
|
114 |
+
"question": datasets.Value("string"),
|
115 |
+
"choices": datasets.features.Sequence(datasets.Value("string")),
|
116 |
+
"answer": datasets.features.ClassLabel(num_classes=4, names=["A", "B", "C", "D"]),
|
117 |
+
}
|
118 |
+
)
|
119 |
+
return datasets.DatasetInfo(
|
120 |
+
description=_DESCRIPTION,
|
121 |
+
features=features,
|
122 |
+
homepage=_HOMEPAGE,
|
123 |
+
citation=_CITATION,
|
124 |
+
)
|
125 |
+
|
126 |
+
def _split_generators(self, dl_manager):
|
127 |
+
"""Returns SplitGenerators."""
|
128 |
+
archive = dl_manager.download(_URL)
|
129 |
+
return [
|
130 |
+
datasets.SplitGenerator(
|
131 |
+
name=datasets.Split("auxiliary_train"),
|
132 |
+
gen_kwargs={
|
133 |
+
"iter_archive": dl_manager.iter_archive(archive),
|
134 |
+
"split": "auxiliary_train",
|
135 |
+
},
|
136 |
+
),
|
137 |
+
datasets.SplitGenerator(
|
138 |
+
name=datasets.Split.TEST,
|
139 |
+
gen_kwargs={"iter_archive": dl_manager.iter_archive(archive), "split": "test"},
|
140 |
+
),
|
141 |
+
datasets.SplitGenerator(
|
142 |
+
name=datasets.Split.VALIDATION,
|
143 |
+
gen_kwargs={
|
144 |
+
"iter_archive": dl_manager.iter_archive(archive),
|
145 |
+
"split": "val",
|
146 |
+
},
|
147 |
+
),
|
148 |
+
datasets.SplitGenerator(
|
149 |
+
name=datasets.Split("dev"),
|
150 |
+
gen_kwargs={
|
151 |
+
"iter_archive": dl_manager.iter_archive(archive),
|
152 |
+
"split": "dev",
|
153 |
+
},
|
154 |
+
),
|
155 |
+
]
|
156 |
+
|
157 |
+
def _generate_examples(self, iter_archive, split):
|
158 |
+
"""Yields examples as (key, example) tuples."""
|
159 |
+
n_yielded_files = 0
|
160 |
+
for id_file, (path, file) in enumerate(iter_archive):
|
161 |
+
if f"/{split}/" in path:
|
162 |
+
if split == "auxiliary_train" or (self.config.name in path or self.config.name == "all"):
|
163 |
+
n_yielded_files += 1
|
164 |
+
lines = (line.decode("utf-8") for line in file)
|
165 |
+
reader = csv.reader(lines)
|
166 |
+
for id_line, data in enumerate(reader):
|
167 |
+
yield f"{id_file}_{id_line}", {"question": data[0], "choices": data[1:5], "answer": data[5]}
|
168 |
+
#else:
|
169 |
+
#print("KO", path)
|
170 |
+
#else:
|
171 |
+
#print("KO2", split, path)
|