Papers › Cleaner Pretraining Corpus Curation with Neural Web Scraping

Cleaner Pretraining Corpus Curation with Neural Web Scraping

22 Feb 2024arXiv:2402.14652archive 2025-07-28

Zhipeng Xu, Zhenghao Liu, Yukun Yan, Zhiyuan Liu, Ge Yu, Chenyan Xiong

The web contains large-scale, diverse, and abundant information to satisfy the information-seeking needs of humans. Through meticulous data collection, preprocessing, and curation, webpages can be used as a fundamental data resource for language model pretraining. However, when confronted with the progressively revolutionized and intricate nature of webpages, rule-based/feature-based web scrapers are becoming increasingly inadequate. This paper presents a simple, fast, and effective Neural web Scraper (NeuScraper) to help extract primary and clean text contents from webpages. Experimental results show that NeuScraper surpasses the baseline scrapers by achieving more than a 20% improvement, demonstrating its potential in extracting higher-quality data to facilitate the language model pretraining. All of the code is available at https://github.com/OpenMatch/NeuScraper.

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openmatch/neuscraper officialmentioned in papermentioned on GitHubpytorchMIT report

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pad_list openmatch/neuscraper/src/scraper/inference.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · ad79f12eb9c4b56b · report
sort openmatch/neuscraper/src/eval/run_eval.py official repository ran · our draft was wrong MIT (permissive) · d4cd7cf9422fc25d · report

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Language ModelingLanguage Modelling

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