| | --- |
| | title: README |
| | emoji: ๐ |
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| | |
| | <p align="center"> |
| | <img src="https://raw.githubusercontent.com/asahi417/lm-question-generation/master/assets/example.png" width="900"> |
| | </p> |
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| | <br> |
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| | ***Language Models for Question Generation (LMQG)*** is the official registry of <a href="https://aclanthology.org/2022.emnlp-main.42/">"Generative Language Models for Paragraph-Level Question Generation, EMNLP 2022"</a>, which has proposed <a href="https://github.com/asahi417/lm-question-generation/blob/master/QG_BENCH.md">QG-Bench</a>, multilingual and multidomain question generation datasets and models. |
| | See the official <a href="https://github.com/asahi417/lm-question-generation">GitHub</a> for more information. |
| | The QG models can be used with <a href="https://pypi.org/project/lmqg">`lmqg`</a> library as below. |
| |
|
| | <pre class="line-numbers"> |
| | <code class="language-python"> |
| | from lmqg import TransformersQG |
| | model = TransformersQG(language='en', model='lmqg/t5-large-squad-qg-ae') |
| | context = "William Turner was an English painter who specialised " |
| | "in watercolour landscapes. He is often known as " |
| | "William Turner of Oxford or just Turner of Oxford to " |
| | "distinguish him from his contemporary, J. M. W. Turner. " |
| | "Many of Turner's paintings depicted the countryside " |
| | "around Oxford. One of his best known pictures is a " |
| | "view of the city of Oxford from Hinksey Hill." |
| | question_answer = model.generate_qa(context) |
| | print(question_answer) |
| | [ |
| | ('Who was an English painter who specialised in watercolour landscapes?', |
| | 'William Turner'), |
| | ("What was William Turner's nickname?", |
| | 'William Turner of Oxford'), |
| | ("What did many of Turner's paintings depict around Oxford?", |
| | 'countryside'), |
| | ("What is one of William Turner's best known paintings?", |
| | 'a view of the city of Oxford') |
| | ] |
| | </code> |
| | </pre> |
| | |
| | See more information bellow. |
| | <ul> |
| | <li> lmqg: <a href="https://github.com/asahi417/lm-question-generation">https://github.com/asahi417/lm-question-generation</a></li> |
| | <li> QG-Bench: <a href="https://github.com/asahi417/lm-question-generation/blob/master/QG_BENCH.md#datasets">https://github.com/asahi417/lm-question-generation/blob/master/QG_BENCH.md#datasets</a></li> |
| | <li> Paper (EMNLP 2022): <a href="https://aclanthology.org/2022.emnlp-main.42/">https://aclanthology.org/2022.emnlp-main.42/</a></li> |
| | </ul> |
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