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raw_v0.1_parquet

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魔搭社区2025-12-05 更新2025-12-06 收录
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https://modelscope.cn/datasets/common-pile/raw_v0.1_parquet
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# Common Pile v0.1 — Parquet Consolidated ## Description This dataset bundles **all “raw” corpora from the Common Pile v0.1 Raw Data [collection](https://huggingface.co/collections/common-pile/common-pile-v01-raw-data-6826b454a5a6a445d0b51b37)**, converted to Apache Parquet and consolidated in a single repository. Nothing has been filtered or modified; the only changes are: * **Format:** original JSON → Parquet * **Layout:** many repositories → one consolidated dataset * **Extra column:** a `len_category` bucket for quick length-based filtering Only the three original columns (`id`, `text`, `source`) are carried over; `len_category` is derived from `text` length. ## Dataset Schema | Column | Type | Notes | |--------|--------|---------------------------------------------------------------| | `id` | string | Original document ID | | `text` | string | UTF-8 plain text | | `source` | string | Name of the originating corpus (e.g. `library_of_congress`) | | `len_category` | string | Bucketed document length (bytes)| ## License Issues Licensing follows the individual corpora. While we aim to produce datasets with completely accurate licensing information, license laundering and inaccurate metadata can cause us to erroneously assign the incorrect license to some documents (for further discussion of this limitation, please see [our paper](https://huggingface.co/papers/2506.05209)). If you believe you have found an instance of incorrect licensing in this dataset, please [start a discussion](https://github.com/r-three/common-pile/discussions/new) on this repository. ## Other Versions * [Per-corpus “raw” datasets](https://huggingface.co/collections/common-pile/common-pile-v01-raw-data-6826b454a5a6a445d0b51b37) * [Filtered set used for Comma v0.1 training](https://huggingface.co/datasets/common-pile/common-pile-filtered) ## Citation If you use this dataset, please cite: ```bibtex @article{kandpal2025common, title = {{The Common Pile v0.1: An 8TB Dataset of Public Domain and Openly Licensed Text}}, author = {Nikhil Kandpal and Brian Lester and Colin Raffel and Sebastian Majstorovic and Stella Biderman and Baber Abbasi and Luca Soldaini and Enrico Shippole and A. Feder Cooper and Aviya Skowron and Shayne Longpre and Lintang Sutawika and Alon Albalak and Zhenlin Xu and Guilherme Penedo and Loubna Ben and Elie Bakouch and John David and Honglu Fan and Dashiell Stander and Guangyu Song and Aaron Gokaslan and John Kirchenbauer and Tom Goldstein and Brian R and Bhavya Kailkhura and Tyler Murray}, journal = {arXiv preprint}, year = {2025} }

# 通用语料库(Common Pile)v0.1 — Parquet 整合版 ## 数据集说明 本数据集整合了**通用语料库(Common Pile)v0.1 原始数据合集**[https://huggingface.co/collections/common-pile/common-pile-v01-raw-data-6826b454a5a6a445d0b51b37] 中的全部‘原始’语料,将其转换为Apache Parquet格式并整合至单个代码仓库中。 本数据集未经过任何过滤或修改,仅作出以下调整: * **格式转换**:原始JSON格式 → Apache Parquet格式 * **布局整合**:分散的多个代码仓库 → 单个整合数据集 * **新增列**:新增`len_category`列,用于基于文档长度的快速筛选 仅保留原始数据集的三列(`id`、`text`、`source`);`len_category`列由`text`的长度计算得到。 ## 数据集架构 | 列名 | 数据类型 | 备注 | |--------|--------|---------------------------------------------------------------| | `id` | 字符串 | 原始文档ID | | `text` | 字符串 | UTF-8 纯文本 | | `source` | 字符串 | 原始语料库名称(例如`library_of_congress`) | | `len_category` | 字符串 | 按字节数划分的文档长度分桶 | ## 授权问题 本数据集的授权规则遵循各原始语料库的授权要求。 尽管我们致力于提供完全准确的授权信息,但由于授权洗白与元数据不准确等问题,可能会导致我们为部分文档错误分配了不恰当的授权。如需了解该局限性的详细讨论,请参阅[我们的论文](https://huggingface.co/papers/2506.05209)。 若您发现本数据集存在授权信息错误的情况,请前往本代码仓库[发起讨论](https://github.com/r-three/common-pile/discussions/new)。 ## 其他版本 * [单语料库‘原始’数据集](https://huggingface.co/collections/common-pile/common-pile-v01-raw-data-6826b454a5a6a445d0b51b37) * [用于Comma v0.1训练的过滤版数据集](https://huggingface.co/datasets/common-pile/common-pile-filtered) ## 引用格式 若您使用本数据集,请引用如下文献: bibtex @article{kandpal2025common, title = {{The Common Pile v0.1: An 8TB Dataset of Public Domain and Openly Licensed Text}}, author = {Nikhil Kandpal and Brian Lester and Colin Raffel and Sebastian Majstorovic and Stella Biderman and Baber Abbasi and Luca Soldaini and Enrico Shippole and A. Feder Cooper and Aviya Skowron and Shayne Longpre and Lintang Sutawika and Alon Albalak and Zhenlin Xu and Guilherme Penedo and Loubna Ben and Elie Bakouch and John David and Honglu Fan and Dashiell Stander and Guangyu Song and Aaron Gokaslan and John Kirchenbauer and Tom Goldstein and Brian R and Bhavya Kailkhura and Tyler Murray}, journal = {arXiv preprint}, year = {2025} }
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2025-08-16
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