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--- |
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license: cc-by-nc-sa-3.0 |
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task_categories: |
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- question-answering |
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language: |
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- en |
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- fr |
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- de |
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- it |
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- es |
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- pt |
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pretty_name: mASNQ |
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size_categories: |
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- 100M<n<1B |
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configs: |
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- config_name: default |
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data_files: |
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- split: train_en |
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path: "eng-train.jsonl" |
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- split: train_de |
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path: "deu-train.jsonl" |
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- split: train_fr |
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path: "fra-train.jsonl" |
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- split: train_it |
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path: "ita-train.jsonl" |
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- split: train_po |
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path: "por-train.jsonl" |
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- split: train_sp |
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path: "spa-train.jsonl" |
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- split: validation_en |
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path: "eng-dev.jsonl" |
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- split: validation_de |
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path: "deu-dev.jsonl" |
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- split: validation_fr |
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path: "fra-dev.jsonl" |
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- split: validation_it |
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path: "ita-dev.jsonl" |
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- split: validation_po |
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path: "por-dev.jsonl" |
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- split: validation_sp |
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path: "spa-dev.jsonl" |
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- config_name: en |
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data_files: |
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- split: train |
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path: "eng-train.jsonl" |
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- split: validation |
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path: "eng-dev.jsonl" |
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- config_name: de |
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data_files: |
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- split: train |
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path: "deu-train.jsonl" |
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- split: validation |
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path: "deu-dev.jsonl" |
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- config_name: fr |
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data_files: |
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- split: train |
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path: "fra-train.jsonl" |
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- split: validation |
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path: "fra-dev.jsonl" |
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- config_name: it |
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data_files: |
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- split: train |
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path: "ita-train.jsonl" |
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- split: validation |
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path: "ita-dev.jsonl" |
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- config_name: po |
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data_files: |
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- split: train |
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path: "por-train.jsonl" |
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- split: validation |
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path: "por-dev.jsonl" |
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- config_name: sp |
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data_files: |
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- split: train |
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path: "spa-train.jsonl" |
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- split: validation |
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path: "spa-dev.jsonl" |
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--- |
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## Dataset Description |
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**mASNQ** is a translated version of ASNQ which is an AS2 dataset created by adapting the Natural Question corpus from Machine Reading (MR) to the AS2 task. |
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The dataset has been translated into five European languages: French, German, Italian, Portuguese, and Spanish, as described in this paper: [Datasets for Multilingual Answer Sentence Selection](https://arxiv.org/abs/2406.10172 'Datasets for Multilingual Answer Sentence Selection'). |
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## Splits: |
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For each language (English, French, German, Italian, Portuguese, and Spanish), we provide: |
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- **train** split |
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- **validation** split |
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### How to load them: |
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To use these splits, you can use the following snippet of code replacing ``[LANG]`` with a language identifier (en, fr, de, it, po, sp). |
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``` |
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from datasets import load_dataset |
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# if you want the whole corpora |
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corpora = load_dataset("matteogabburo/mASNQ") |
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""" |
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if you want the default splits of a specific language, replace [LANG] with an identifier in: en, fr, de, it, po, sp |
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dataset = load_dataset("matteogabburo/mASNQ", "[LANG]") |
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""" |
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# example: |
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italian_dataset = load_dataset("matteogabburo/mASNQ", "it") |
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``` |
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## Format: |
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Each example has the following format: |
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``` |
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{ |
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'eid': 25, |
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'qid': 0, |
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'cid': 18, |
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'label': 1, |
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'question': 'what is the use of fn key in mac', |
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'candidate': 'While it is most common for the Fn key processing to happen directly in the keyboard micro-controller , offering no knowledge to the main computer of whether the Fn key was pressed , some manufacturers , like Lenovo , perform this mapping in BIOS running on the main CPU , allowing remapping the Fn key by modifying the BIOS interrupt handler ; and Apple , in which the Fn key is mappable and serves other uses too , as triggering the Dictation function by pressing the Fn key twice .' |
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} |
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``` |
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Where: |
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- **eid**: is the unique id of the example (question, candidate) |
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- **qid**: is the unique id of the question |
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- **cid**: is the unique id of the answer candidate |
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- **label**: identifies whether the answer candidate ``candidate`` is correct for the ``question`` (1 if correct, 0 otherwise) |
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- **question**: the question |
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- **candidate**: the answer candidate |
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## Citation |
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If you find this dataset useful, please cite the following paper: |
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**BibTeX:** |
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``` |
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@misc{gabburo2024datasetsmultilingualanswersentence, |
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title={Datasets for Multilingual Answer Sentence Selection}, |
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author={Matteo Gabburo and Stefano Campese and Federico Agostini and Alessandro Moschitti}, |
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year={2024}, |
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eprint={2406.10172}, |
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archivePrefix={arXiv}, |
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primaryClass={cs.CL}, |
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url={https://arxiv.org/abs/2406.10172}, |
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} |
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``` |
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