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2ca42ebc496ce529f1f0529356b1cdef
French Open Data
Open Government
Pleias
Various open data
null
cour-d'appel_n°2102441_08_02_2024.pdf
courdecassation.fr
French
Written
3,540
5,962
8 février 2024 Cour d'appel d'Orléans RG n° 21/02441 Chambre Commerciale Texte de la décision Entête COUR D'APPEL D'ORLÉANS CHAMBRE COMMERCIALE, ÉCONOMIQUE ET FINANCIÈRE GROSSES + EXPÉDITIONS : le 08/02/2024 la SAS DUVIVIER & ASSOCIES la SELARL STRATEM AVOCATS ARRÊT du : 08 FEVRIER 2024 N° : 36 - 23 N° RG 21/02441...
https://www.wikidata.org/wiki/Q32295648
Wikidata
Semantic data
Pleias
CC0
null
Категория:Родившиеся в Приволжском районе (Астраханская область)
None
Multilingual
Semantic data
59
222
Категория:Родившиеся в Приволжском районе (Астраханская область) категория в проекте Викимедиа Категория:Родившиеся в Приволжском районе (Астраханская область) это частный случай понятия категория в проекте Викимедиа Категория:Родившиеся в Приволжском районе (Астраханская область) категория объединяет темы место рожден...
https://en.wikipedia.org/wiki/Ahmed%20Abdel%20Mougod%20Soliman
Wikipedia
Open Web
Wikimedia/Pleias
CC-By-SA
2,023
Ahmed Abdel Mougod Soliman
https://en.wikipedia.org/w/index.php?title=Ahmed Abdel Mougod Soliman&action=history
English
Written
56
97
Ahmed Abdel Mougod Soliman (born 19 December 1970) is an Egyptian long-distance runner. He competed in the men's marathon at the 2000 Summer Olympics. References 1970 births Living people Athletes (track and field) at the 2000 Summer Olympics Egyptian male long-distance runners Egyptian male marathon runners Olympic ...
uk.org.publicwhip/debate/1937-07-29a.3311.2
UK Hansard – House of Commons
Open Government
Pleias
Open Parliament Licence v3.0
1,937
Oral Answers to Questions — GOVERNMENT DEPARTMENTS. — NATIONAL DEFENCE CONTRIBU- TION (CO-OPERATIVE SOCIETIES).
Major Milner
English
Spoken
23
29
asked the Chancellor of the Exchequer whether he can indicate the estimated amount co-operative societies will pay by way of National Defence Contribution?
https://github.com/huntshark/validator/blob/master/test/isInteger.test.js
Github Open Source
Open Source
BigCode/Github/Pleias
MIT
2,018
validator
huntshark
JavaScript
Code
711
2,801
const isInteger = require('../src/isInteger'); const chai = require('chai'); const should = chai.should; chai.use(require('chai-things')); should(); describe('isInteger', function () { // .3 it(`isInteger(.3) === false`, function () { isInteger(.3).should.equal(false); }); // 3 it(`isInteger(3) === tr...
(2016)浙0110民初字第12148号
Chinese-Court-Decisions
Open Government
Pleias
Public Domain
2,016
方清喜与浙江广诚建设有限公司建设工程施工合同纠纷一审民事裁定书
杭州市余杭区人民法院
Chinese
Written
451
349
杭州市余杭区人民法院民 事 裁 定 书(2016)浙0110民初字第12148号原告:方清喜,男,1967年2月15日出生,汉族,住浙江省淳安县。委托代理人:金星,浙江星穹律师事务所律师。委托代理人:郝碧佳,浙江星穹律师事务所律师。被告:浙江广诚建设有限公司,住所地杭州经济技术开发区杭州东部国际商务中心2幢1202室。法定代表人:杨东栋,董事长。委托代理人:练良火,浙江腾飞金鹰律师事务所律师。委托代理人:陈姣娣,浙江腾飞金鹰律师事务所律师。本院在审理原告方清喜诉被告浙江广诚建设有限公司建设工程施工合同纠纷一案,原告方清喜于2016年10月8日向本院提出撤诉申请,要求撤回对被告浙江广诚建设有限公司的起诉。本院认为,原告方清喜的撤诉申请...
hal-03712933-eccv2022submission.txt_1
French-Science-Pile
Open Science
Pleias
Various open science
2,022
Hierarchical Average Precision Training for Pertinent Image Retrieval. ECCV 2022, Oct 2022, Tel-Aviv, Israel. ⟨hal-03712933v2⟩
None
English
Written
7,261
13,171
HAL is a multi-disciplinary open access archive for the deposit and dissemination of scientific research documents, whether they are published or not. The documents may come from teaching and research institutions in France or abroad, or from public or private research centers. L’archive ouverte pluridisciplinaire HAL,...
US-1905283258-A_1
USPTO
Open Government
Baber
Public Domain
1,905
None
None
English
Written
2,099
2,948
Vapor electric apparatus. PATENTED MAR. 24, 1908. 0. 0. KRUH. VAPOR ELECTRIC APPARATUS. APPLICATION FILED OGT.1B 1905. 2 SHBETSr-SHEET 1. Inventor Osias O. Kruh, y fitty. Witnesses: Fig. Fig. 3. Witnesses PATENTBD MAR. 24, 1908- 0. 0. KRUH. VAPOR ELECTRIC APPARATUS. APPLIOATION nun 0011a. 1006. 2 sums-sum z. Osias O....
https://github.com/voteflux/members.flux.party/blob/master/src/components/UserRevocation.vue
Github Open Source
Open Source
BigCode/Github/Pleias
MIT
null
members.flux.party
voteflux
Vue
Code
336
1,211
<template> <UiSection title="Revoke your Membership" :dangerZone="true"> <Warning> This will remove all your data from our database.<br> To undo this you'll need to sign up again.<br> There is no going back. </Warning> <error v-if="this.err.revoke.msg"> ...
https://arz.wikipedia.org/wiki/%D8%A8%D9%8A%D8%AA%D8%B1%20%D9%85%D8%A7%D8%AA%D9%8A%D8%A7%D8%B3
Wikipedia
Open Web
Wikimedia/Pleias
CC-By-SA
2,023
بيتر ماتياس
https://arz.wikipedia.org/w/index.php?title=بيتر ماتياس&action=history
Egyptian Arabic
Written
58
188
بيتر ماتياس كان مؤرخ من المملكه المتحده. حياته بيتر ماتياس من مواليد يوم 10 يناير سنة 1928. الدراسه درس فى Colston's School و مدرسه بريستول للقواعد. العضويه كان عضو فى: الاكاديميه الاوروبيه جوايز زميل الاكاديميه البريطانيه نيشان الامبراطوريه البريطانيه من رتبه قائد وفاته بيتر ماتياس مات يوم 1 مارس سنة 2016...
https://dadosabertos.web.stj.jus.br/stj/267371978
Superior Tribunal de Justiça
Open Government
Pleias
Public Domain
null
null
Portuguese
Written
553
1,179
DECISÃO Cuida-se de agravo interposto por WALESKA GONCALVES DOS SANTOS CINTRA, contra decisão que inadmitiu recurso especial. É, no essencial, o relatório. Decido. Mediante análise do recurso de WALESKA GONCALVES DOS SANTOS CINTRA, verifica-se que incide o óbice da Súmula n. 284/STF, uma vez que não houve a indicação d...
greekenglishlexi0000henr_w1t1_75
English-PD
Open Culture
Pleias
Public Domain
1,846
Greek-english lexicon based on the german work of francis passow
Henry George Liddell, M.A., and Robert Scott, M.A
English
Written
7,677
16,728
10, 222; also with past, Att., Matth., Gr. § 524, 3.—3. with optat., followed by subj., with ay, Il. 11, 386; in Att. this use is dub.—4. the first clause with dy is left out, when it can be easily supplied from the context. 3, 52:9, 245, etc.; or its place is supplied by a part., Ul. 10, 246 —é. 350; 15, 213. EI press...
https://got.wikipedia.org/wiki/%F0%90%8D%86%F0%90%8C%B0%F0%90%8C%B9%F0%90%8D%82%F0%90%8C%BD%F0%90%8C%B9%F0%90%8C%B6%F0%90%8D%89%20%F0%90%8D%86%F0%90%8C%BF%F0%90%8C%B8%F0%90%8C%B0%F0%90%8D%82%F0%90%8C%BA
Wikipedia
Open Web
Wikimedia/Pleias
CC-By-SA
2,023
𐍆𐌰𐌹𐍂𐌽𐌹𐌶𐍉 𐍆𐌿𐌸𐌰𐍂𐌺
https://got.wikipedia.org/w/index.php?title=𐍆𐌰𐌹𐍂𐌽𐌹𐌶𐍉 𐍆𐌿𐌸𐌰𐍂𐌺&action=history
Gothic
Written
22
561
𐍆𐌰𐌹𐍂𐌽𐌴𐌹𐍃 𐍆𐌿𐌸𐌰𐍂𐌺 𐌹𐍃𐍄 𐍃𐍉 𐍆𐌰𐌹𐍂𐌽𐌾𐍉 𐌱𐍉𐌺𐌰𐍄𐌴𐍅𐌰 𐍂𐌿𐌽𐍉. 𐌱𐍂𐌿𐌺𐌽𐌰𐌳𐌰 𐍅𐌰𐍂𐌸 𐌰𐌽𐌰 𐌲𐌰𐌹𐍂𐌼𐌰𐌽𐌹𐍃𐌺𐌰𐌹𐌼 𐌺𐌿𐌽𐌾𐌰𐌼 𐌹𐌽 𐌼𐌹𐌳𐌿𐌼𐌰𐌹 𐌰𐌷𐍄𐌿𐌳𐌹𐌽𐍃 𐌾𐌴𐍂𐌰𐌷𐌿𐌽𐌳𐌹𐍃. 𐍆𐌿𐌸𐌰𐍂𐌺 𐌲𐌰𐍅𐌹𐍃𐍃 Runenprojekt (𐌸𐌹𐌿𐌳𐌹𐍃𐌺𐌰 𐍂𐌰𐌶𐌳𐌰) 𐌱𐍉𐌺𐌰𐍄𐌴𐍅𐌰
(2021)辽0726民初1958号
Chinese-Court-Decisions
Open Government
Pleias
Public Domain
2,021
黑山富洪物业有限公司与李明物业服务合同纠纷一审民事裁定书
辽宁省黑山县人民法院
Chinese
Written
357
278
辽宁省黑山县人民法院 民 事 裁 定 书 (2021)辽0726民初1958号 原告:黑山富洪物业有限公司,住所地黑山县黑山镇一街中大中路金鼎御锦城二期A座门市由北向南向东第24户。 法定代表人:许兰英。 被告:李明,男,26岁,汉族,住黑山县。 原告黑山富洪物业有限公司与被告李明物业服务合同纠纷一案,在本院审理中,原告黑山富洪物业有限公司于2021年7月5日向本院提出撤诉申请。 本院认为,当事人有权在法律规定的范围内处分自己的诉讼权利,现原告要求撤回起诉,符合法律规定,本院予以准许。本院依照《中华人民共和国民事诉讼法》第一百四十五条一款之规定,裁定如下: 准许原告撤诉。 案件受理费25元,由原告负担。 审判员  曹磊 二〇二一年七...
(2019)黔2301执594号
Chinese-Court-Decisions
Open Government
Pleias
Public Domain
2,019
贺正虎、周洪秀与蒋加芹失信决定书
兴义市人民法院
Chinese
Written
1,103
762
兴义市人民法院 失 信 决 定 书 (2019)黔2301执594号 本院在执行申请执行人贺正虎、周洪秀与被执行人蒋加芹一案中,经查,被执行人具有《最高人民法院关于公布失信被执行人名单信息的若干规定》第一条第一项规定的情形。依照《中华人民共和国民事诉讼法》第二百五十五条、《最高人民法院关于公布失信被执行人名单信息的若干规定》第一条第一项的规定,决定如下: 将蒋加芹纳入失信被执行人名单。 本院将根据《最高人民法院关于公布失信被执行人名单信息的若干规定》的规定,将失信被执行人名单信息录入全国法院失信被执行人名单库,并向社会公布;同时将失信被执行人名单信息向政府相关部门、金融监管机构、金融机构、承担行政职能的事业单位及行业协会等通报,供相...
(2020)鲁0783民初3283号
Chinese-Court-Decisions
Open Government
Pleias
Public Domain
2,020
寿光市人民政府古城街道办事处与刘传福、周香芳房屋买卖合同纠纷一审民事裁定书
山东省寿光市人民法院
Chinese
Written
395
319
文书内容山东省寿光市人民法院民 事 裁 定 书(2020)鲁0783民初3283号原告:寿光市人民政府古城街道办事处。住所地:寿光市古城街道。统一社会信用代码:11370783004315712K。法定代表人:尹爱军,主任。被告:刘传福,男,1965年12月19日生,汉族,住寿光市。被告:周香芳,女,1965年06月21日生,汉族,住寿光市。原告寿光市人民政府古城街道办事处与被告刘传福、周香芳房屋买卖合同纠纷一案,本院于2020年6月17日立案。原告寿光市人民政府古城街道办事处未在本院指定期限内预交案件受理费。依照《中华人民共和国民事诉讼法》第一百一十八条、第一百五十四条第一款第十一项、《最高人民法院关于适用的解释》第二百一十三条规...
https://uk.wikipedia.org/wiki/%D0%9B%D1%83%D1%86%D1%96%D0%B9%20%D0%95%D0%BC%D1%96%D0%BB%D1%96%D0%B9%20%D0%9F%D0%B0%D0%B2%D0%BB%D0%BE%20%D0%9C%D0%B0%D0%BA%D0%B5%D0%B4%D0%BE%D0%BD%D1%81%D1%8C%D0%BA%D0%B8%D0%B9
Wikipedia
Open Web
Wikimedia/Pleias
CC-By-SA
2,023
Луцій Емілій Павло Македонський
https://uk.wikipedia.org/w/index.php?title=Луцій Емілій Павло Македонський&action=history
Ukrainian
Written
1,671
5,060
Луцій Емілій Павло Македонський (; близько 229 до н. е. — ) — політичний, державний і військовий діяч Стародавнього Риму, двічі консул , видатний воєначальник. Родина Луцій Емілій Павло Македонський народився близько 229 до н. е. Його батьком був Луцій Емілій Павло, консул, якого було вбито у битві при Каннах у 216 ...
https://github.com/fachriagustian12/sis_pakar/blob/master/application/controllers/Diagnosa.php
Github Open Source
Open Source
BigCode/Github/Pleias
LicenseRef-scancode-unknown-license-reference, MIT
2,021
sis_pakar
fachriagustian12
PHP
Code
158
729
<?php defined('BASEPATH') or exit('No direct script access allowed'); class Diagnosa extends CI_Controller { public function __construct() { parent::__construct(); $this->isLogin = $this->session->userdata('isLogin'); if ($this->isLogin == 0) { redirect(base_url()); ...
https://www.wikidata.org/wiki/Q32533154
Wikidata
Semantic data
Pleias
CC0
null
Category:1986–1987 Nordic combined skiing season
None
Multilingual
Semantic data
143
466
Kategori:Nordisk kombination-säsongen 1986/1987 Wikimedia-kategori Kategori:Nordisk kombination-säsongen 1986/1987 instans av Wikimedia-kategori Kategori:Nordisk kombination-säsongen 1986/1987 föregås av Kategori:Nordisk kombination-säsongen 1985/1986 Kategori:Nordisk kombination-säsongen 1986/1987 följs av Kategori:No...
https://www.regulations.gov/document/EPA-R09-OAR-2011-0382-0015
reg_docs
Open Government
kl3m
Public Domain
2,011
CALIFORNIA AIR RESOURCES BOARD
United States Government
English
Written
900
1,404
CALIFORNIA AIR RESOURCES BOARD SIP COMPLETENESS CHECKLIST (Electronic Format) *** TO BE COMPLETED BY DISTRICT AND RETURNED TO ARB *** All rules submitted to the EPA as State Implementation Plan (SIP) revisions must be supported by certain information and documentation for the rule packages to be deemed comple...
https://ja.wikipedia.org/wiki/%E3%81%AE%E3%81%84%E3%81%A1%E9%A7%85
Wikipedia
Open Web
Wikimedia/Pleias
CC-By-SA
2,023
のいち駅
https://ja.wikipedia.org/w/index.php?title=のいち駅&action=history
Japanese
Written
79
1,382
のいち駅(のいちえき)は、高知県香南市野市町西野にある、土佐くろしお鉄道(TKT)ごめん・なはり線の駅。香南市の代表駅である。駅番号はGN37。 歴史 2002年(平成14年)7月1日:開業。 駅構造 交換設備のある相対式2面2線のホームを持つ高架駅である。1番線を上下主本線、2番線を上下副本線とした一線スルーとなっており、設備も両方向の入線・発車が想定されているが、すべての定期列車が停車するため、ホームは方向別に使い分けられている。 駅員無配置ではあるが、駅舎内の売店で定期券や回数券を販売しており、乗車券自動販売機も設置されている。そのため、業態としては簡易委託駅に近い。入口は西入口と北入口があるが、時間帯によっては...
End of preview. Expand in Data Studio

Common Corpus

Full paper - ICLR 2026 oral

Common Corpus is the largest open and permissible licensed text dataset, comprising 2.27 trillion tokens (2,267,302,720,836 tokens). It is a diverse dataset, consisting of books, newspapers, scientific articles, government and legal documents, code, and more. Common Corpus has been created by Pleias in association with several partners.

Common Corpus differs from existing open datasets in that it is:

  • Truly Open: contains only data that is either uncopyrighted or permissively licensed
  • Traceable: each individual document is associated with documented contextual information, including licensed use or lack of copyright.
  • Multilingual: mostly representing English and French data, but contains data for 8 languages with more than 10 billion tokens (German, Spanish, Italian, Polish, Greek, Latin) and 33 languages with more than 1 billion tokens.
  • Diverse: consisting of scientific articles, government and legal documents, code, and cultural heritage data, including books and newspapers
  • Extensively Curated: spelling and formatting has been corrected from digitized texts, harmful and toxic content has been removed, and content with low educational content has also been removed.

The dataset in its entirety meets the requirements of the Code of Conduct of the AI Act and goes further than the current requirements for data transparency. It aims to set a new standard of openness in AI, showing that detailed provenance at a granular document level is a realistic objective, even at the scale of 2.3 trillion tokens.

Common Corpus makes it possible to train model compatible with the Open Source Initiative’s definition of open-source AI, which includes openness of use, meaning use is permitted for “any purpose and without having to ask for permission". Based on the available licensing information Common Corpus can be filtered to only include public domain works or a subset of free licenses (like attribution only).

About Common Corpus

Common Corpus is made of six carefully curated collections:

  • OpenCulture: our largest collection at 967,018,390,906 tokens, featuring public domain books, newspapers from cultural heritage repositories and open projets like Wikisource ad Gutenberg. We're developing innovative tools of OCR correction based on Pleias Models to correct historical digitization errors, while implementing advanced toxicity filtering to ensure content meets modern ethical standards.
  • OpenGovernment: 579,150,518,908 tokens of financial and legal documents, including Finance Commons (from sources like SEC and WTO) and Legal Commons (including Europarl, Caselaw Access Project, Chinese Case Law), providing enterprise-grade training data from regulatory bodies and administrative sources.
  • OpenSource: 283,227,402,898 tokens of high-quality code in open source from GitHub, filtered using ArmoRM to ensure only the top 80% of submissions by quality rating are included.
  • OpenScience: 281,193,563,789 tokens of academic content from Open Alex and other open science reposiories, processed using vision-language models to preserve crucial document structure and formatting.
  • OpenWeb: 88,517,032,065 tokens from Wikipedia (official releases from the Wikimedia Foundation on Huggingface), YouTube Commons and Stack-Exchange.
  • Open Semantic: 67,958,671,827 tokens from Wikidata (official releases from the Wikimedia Foundation on Huggingface). The data has been reprocessed thanks to support and help of Wikidata and Wikimedia Germany. It includes the transcriptions of all the semantic triplets into natural language statements in over 300 languages.
Collection Domain Sources
OpenGovernment legal and administrative Finance Commons (e.g. SEC, WTO) and Legal Commons (e.g. Europarl, Caselaw Access Project, Chinese CaseLaw)
OpenCulture cultural heritage public domain books and newspapers, Wikisource
OpenScience academic OpenAlex
OpenWeb web text YouTube Commons, MOSEL, Stack Exchange, CCCC
OpenSource code GitHub
OpenSemantic Semantic data Wikidata

The first version of Common Corpus was released in November of 2024. The second version added Wikidata and detailed document-level information, including licensing and other core metadata whenever available. The third ongoing version dramatically expand the language coverage of Common Corpus beyond the US and Europe with the integration of large collection of documents in Chinese, Japanese, Arabic, Korean and Hindi.

The dataset release is accompanied by a comprehensive technical report (ICRL 2026 - oral) detailing our methodologies and data sources will accompany the release, ensuring full transparency and reproducibility.

Dataset Structure

Data Fields
  • identifier: unique text identifier. In many cases, this is also the link to the original resources.
  • collection: name of one of the XX sub-collections curated for Common corpus.
  • open type: one of the six leading collection groupings:
  • license: sharing rights for the content either uncopyrighted (public domain, US federal public domain, CC0 on Wikidata) or various free licenses (Creative Commons, MIT, French Licence ouverte, etc.)
  • date: date of creation of the resource where known. Due to the significance of public domain and other cultural heritage content, more than half of Common Corpus predates the 21st century.
  • title: title of the resource when known or alternatively the filename.
  • creator: institution publishing/collecting/curating the resource.
  • language: automatically identified language.
  • word_count: number of space delimited words.
  • token_count: number of tokens as calculated by Pleias official tokenizer and Gemma-3 tokenizer for Chinese, Japanese, Arabic, Korean and few additional non-Western languages.
  • text: full text, without formatting.

Provenance

The provenance of the datasets that make up Refined Common Corpus is detailed in the technical report [link]. Additionally, the original source URL is available in the metadata for each document for most of the dataset.

How to Use

Considerations for Using the Data

All data in Common Corpus are permissibly licensed and may be used for both commercial and non-commercial purposes.

The dataset is multilingual. The language text is included in the metadata, so data can be filtered by language. Additionally, some of the text data are historical. The year each text is written is included in the metadata, therefore it is possible to construct a dataset with a custom date cutoff if desired.

Discussion of Bias

Some of the dataset sources contain biased and toxic content, such as stereotypes about certain minoritized groups. We have removed texts which had high toxicity scores according to our toxicity classifier, Celadon, or which contain offensive terms and slurs. See our preprint for more details.

Personal and Sensitive Information

We have attempted to remove personally identifiable information (PII). We primarily use Microsoft Presidio, but make additional modifications to account for language- and country-specific considerations, such as European phone number formats.

Some small parts of the French administrative common crawl have been entirely dropped using our unreleased small reasoning model for GDPR-filtering, due to the heightened risk of transmitting identifiable indirect personal information.

Using Common Corpus

from datasets import load_dataset data = load_dataset('PleIAs/common_corpus')

Acknowledgements

The Corpus was built up with the support and concerted efforts of the AI Alliance, the French Ministry of Culture as part of the prefiguration of the service offering of the Alliance for Language technologies EDIC (ALT-EDIC).

This dataset was also made in partnership with Wikimedia Enterprise and Wikidata/Wikimedia Germany. We're also thankful to our partner Libraries Without Borders for continuous assistance on extending low resource language support.

The corpus was stored and processed with the generous support of the AI Alliance, Jean Zay (Eviden, Idris), Tracto AI, Mozilla. Generation of OCR correction at scale were performed using HPC resources from two GENCI–IDRIS grants: 2023-AD011014736 and GC011015451.

Some parts of the corpus have been built on top of other similar open science LLM community initiatives such as German-Commons, MOSEL, kl3m, AI4Bharat, Creative Commons Common Crawl. We included a new curator field to properly acknowledge this data work.

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