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Automated Taxonomy Discovery and Exploration
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Automated Taxonomy Discovery and Exploration

1st ed. 2022 - Erschienen 2023.

42436260/1
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Text Mining, Taxonomy Enrichment, Label-efficient Machine Learning, Taxonomy Discovery, Taxonomy Construction, Weakly-supervised Learning, Knowledge Discovery from Text

Produktart:
📚 Bücher
Autor(en):
Shen, Jiaming und Jiawei Han:
Anbieter:
Buchpark GmbH
Bestell-Nr.:
424362601
Katalog:
Varia
ISBN | EAN:
3031114078 | 9783031114076
Stichworte:
Text, Mining, Taxonomy, Enrichment, Label-efficient, Machine, Learning, Discovery, Construction, Weakly-supervised, Knowledge, from
Zahlungsarten:
Vorauskasse, PayPal
Gebraucht, sehr gut 30,93 EUR 27,84 EUR Kostenloser Versand
Sonderaktion: 10% Rabatt bis 05.11.2026
Automated Taxonomy Discovery and Exploration
Automated Taxonomy Discovery and Exploration
Gebraucht, sehr gut
30,93 EUR 27,84 EUR
Kostenloser Versand
This book provides a principled data-driven framework that progressively constructs, enriches, and applies taxonomies without leveraging massive human annotated data. Traditionally, people construct domain-specific taxonomies by extensive manual curations, which is time-consuming and costly. In today¿s information era, people are inundated with the vast amounts of text data. Despite their usefulness, people haven¿t yet exploited the full power of taxonomies due to the heavy curation needed for creating and maintaining them. To bridge this gap, the authors discuss automated taxonomy discovery and exploration, with an emphasis on label-efficient machine learning methods and their real-world usages. Taxonomy organizes entities and concepts in a hierarchy way. It is ubiquitous in our daily life, ranging from product taxonomies used by online retailers, topic taxonomies deployed by news outlets and social media, as well as scientific taxonomies deployed by digital libraries across various domains. When properly analyzed, these taxonomies can play a vital role for science, engineering, business intelligence, policy design, e-commerce, and more. Intuitive examples are used throughout enabling readers to grasp concepts more easily.
Jiaming Shen, Ph.D., is a Research Scientist at Google Research working on data mining and natural language processing. His research aims to develop automated methods for mining knowledge from text data without excessive human annotations.  He completed his Ph.D. from the University of Illinois at Urbana-Champaign and a B.S. degree from Shanghai Jiao Tong University. His research has been awarded several fellowships and scholarships, including a Brian Totty Graduate Fellowship and a Yunni & Maxine Pao Memorial Fellowship.Jiawei Han, Ph.D. is a Michael Aiken Chair Professor at the University of Illinois at Urbana-Champaign. His research areas encompass data mining, text mining, data warehousing, and information network analysis, with over 800 research publications. He is a Fellow of both ACM and the IEEE and has received numerous prominent awards, including the ACM SIGKDD Innovation Award (2004) and the IEEE Computer Society W. Wallace McDowell Award (2009).
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