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Mining Structures of Factual Knowledge from Text: An...

Mining Structures of Factual Knowledge from Text: An Effort-Light Approach

Xiang Ren, Jiawei Han, Lise Getoor, Wei Wang, Johannes Gehrke, Robert Grossman
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The real-world data, though massive, is largely unstructured, in the form of natural-language text. It is challenging but highly desirable to mine structures from massive text data, without extensive human annotation and labeling. In this book, we investigate the principles and methodologies of mining structures of factual knowledge (e.g., entities and their relationships) from massive, unstructured text corpora.
Departing from many existing structure extraction methods that have heavy reliance on human annotated data for model training, our effort-light approach leverages human-curated facts stored in external knowledge bases as distant supervision and exploits rich data redundancy in large text corpora for context understanding. This effort-light mining approach leads to a series of new principles and powerful methodologies for structuring text corpora, including (1) entity recognition, typing and synonym discovery, (2) entity relation extraction, and (3) open-domain attribute-value mining and information extraction. This book introduces this new research frontier and points out some promising research directions.
年:
2018
版本:
Hardcover
出版商:
Morgan & Claypool
語言:
english
頁數:
199
ISBN 10:
1681733943
ISBN 13:
9781681733944
系列:
Synthesis Lectures on Data Mining and Knowledge Discovery
文件:
PDF, 6.16 MB
IPFS:
CID , CID Blake2b
english, 2018
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