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Reasoning web = explainable artifici...
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Summer School on Reasoning Web (2019 :)
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Reasoning web = explainable artificial intelligence : 15th International Summer School 2019, Bolzano, Italy, September 20-24, 2019 : tutorial lectures /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Reasoning web/ edited by Markus Krotzsch, Daria Stepanova.
Reminder of title:
explainable artificial intelligence : 15th International Summer School 2019, Bolzano, Italy, September 20-24, 2019 : tutorial lectures /
other author:
Krotzsch, Markus.
corporate name:
Summer School on Reasoning Web
Published:
Cham :Springer International Publishing : : 2019.,
Description:
xi, 283 p. :ill. (some col.), digital ;24 cm.
[NT 15003449]:
Classical Algorithms for Reasoning and Explanation in Description Logics -- Explanation-Friendly Query Answering Under Uncertainty -- Provenance in Databases: Principles and Applications -- Knowledge Representation and Rule Mining in Entity-Centric Knowledge Bases -- Explaining Data with Formal Concept Analysis -- Logic-based Learning of Answer Set Programs -- Constraint Learning: An Appetizer -- A Modest Markov Automata Tutorial -- Explainable AI Planning (XAIP): Overview and the Case of Contrastive.
Contained By:
Springer eBooks
Subject:
Semantic Web - Congresses. -
Online resource:
https://doi.org/10.1007/978-3-030-31423-1
ISBN:
9783030314231
Reasoning web = explainable artificial intelligence : 15th International Summer School 2019, Bolzano, Italy, September 20-24, 2019 : tutorial lectures /
Reasoning web
explainable artificial intelligence : 15th International Summer School 2019, Bolzano, Italy, September 20-24, 2019 : tutorial lectures /[electronic resource] :edited by Markus Krotzsch, Daria Stepanova. - Cham :Springer International Publishing :2019. - xi, 283 p. :ill. (some col.), digital ;24 cm. - Lecture notes in computer science,118100302-9743 ;. - Lecture notes in computer science ;11810..
Classical Algorithms for Reasoning and Explanation in Description Logics -- Explanation-Friendly Query Answering Under Uncertainty -- Provenance in Databases: Principles and Applications -- Knowledge Representation and Rule Mining in Entity-Centric Knowledge Bases -- Explaining Data with Formal Concept Analysis -- Logic-based Learning of Answer Set Programs -- Constraint Learning: An Appetizer -- A Modest Markov Automata Tutorial -- Explainable AI Planning (XAIP): Overview and the Case of Contrastive.
The research areas of Semantic Web, Linked Data, and Knowledge Graphs have recently received a lot of attention in academia and industry. Since its inception in 2001, the Semantic Web has aimed at enriching the existing Web with meta-data and processing methods, so as to provide Web-based systems with intelligent capabilities such as context awareness and decision support. The Semantic Web vision has been driving many community efforts which have invested a lot of resources in developing vocabularies and ontologies for annotating their resources semantically. Besides ontologies, rules have long been a central part of the Semantic Web framework and are available as one of its fundamental representation tools, with logic serving as a unifying foundation. Linked Data is a related research area which studies how one can make RDF data available on the Web and interconnect it with other data with the aim of increasing its value for everybody. Knowledge Graphs have been shown useful not only for Web search (as demonstrated by Google, Bing, etc.) but also in many application domains.
ISBN: 9783030314231
Standard No.: 10.1007/978-3-030-31423-1doiSubjects--Topical Terms:
576331
Semantic Web
--Congresses.
LC Class. No.: TK5105.88815 / .S85 2019
Dewey Class. No.: 025.0427
Reasoning web = explainable artificial intelligence : 15th International Summer School 2019, Bolzano, Italy, September 20-24, 2019 : tutorial lectures /
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explainable artificial intelligence : 15th International Summer School 2019, Bolzano, Italy, September 20-24, 2019 : tutorial lectures /
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edited by Markus Krotzsch, Daria Stepanova.
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Classical Algorithms for Reasoning and Explanation in Description Logics -- Explanation-Friendly Query Answering Under Uncertainty -- Provenance in Databases: Principles and Applications -- Knowledge Representation and Rule Mining in Entity-Centric Knowledge Bases -- Explaining Data with Formal Concept Analysis -- Logic-based Learning of Answer Set Programs -- Constraint Learning: An Appetizer -- A Modest Markov Automata Tutorial -- Explainable AI Planning (XAIP): Overview and the Case of Contrastive.
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The research areas of Semantic Web, Linked Data, and Knowledge Graphs have recently received a lot of attention in academia and industry. Since its inception in 2001, the Semantic Web has aimed at enriching the existing Web with meta-data and processing methods, so as to provide Web-based systems with intelligent capabilities such as context awareness and decision support. The Semantic Web vision has been driving many community efforts which have invested a lot of resources in developing vocabularies and ontologies for annotating their resources semantically. Besides ontologies, rules have long been a central part of the Semantic Web framework and are available as one of its fundamental representation tools, with logic serving as a unifying foundation. Linked Data is a related research area which studies how one can make RDF data available on the Web and interconnect it with other data with the aim of increasing its value for everybody. Knowledge Graphs have been shown useful not only for Web search (as demonstrated by Google, Bing, etc.) but also in many application domains.
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Computer Science (Springer-11645)
based on 0 review(s)
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EB TK5105.88815 .S85 2019
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