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Inductive Logic Programming : 28th International Conference, ILP 2018, Ferrara, Italy, September 2-4, 2018, Proceedings / edited by Fabrizio Riguzzi, Elena Bellodi, Riccardo Zese.

SpringerLink Books Computer Science (2011-2024) Available online

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Format:
Book
Contributor:
Riguzzi, Fabrizio, Editor.
Bellodi, Elena., Editor.
Zese, Riccardo, Editor.
SpringerLink (Online service)
Series:
Computer Science (SpringerNature-11645)
Lecture notes in computer science. Lecture notes in artificial intelligence 2945-9141 ; 11105
Lecture Notes in Artificial Intelligence, 2945-9141 ; 11105
Language:
English
Subjects (All):
Artificial intelligence.
Computer science.
Compilers (Computer programs).
Computer programming.
Information technology-Management.
Artificial Intelligence.
Computer Science Logic and Foundations of Programming.
Compilers and Interpreters.
Programming Techniques.
Computer Application in Administrative Data Processing.
Local Subjects:
Artificial Intelligence.
Computer Science Logic and Foundations of Programming.
Compilers and Interpreters.
Programming Techniques.
Computer Application in Administrative Data Processing.
Physical Description:
1 online resource (IX, 173 pages) : 201 illustrations, 20 illustrations in color.
Edition:
1st ed. 2018.
Contained In:
Springer Nature eBook
Place of Publication:
Cham : Springer International Publishing : Imprint: Springer, 2018.
System Details:
text file PDF
Summary:
This book constitutes the refereed conference proceedings of the 28th International Conference on Inductive Logic Programming, ILP 2018, held in Ferrara, Italy, in September 2018. The 10 full papers presented were carefully reviewed and selected from numerous submissions. Inductive Logic Programming (ILP) is a subfield of machine learning, which originally relied on logic programming as a uniform representation language for expressing examples, background knowledge and hypotheses. Due to its strong representation formalism, based on first-order logic, ILP provides an excellent means for multi-relational learning and data mining, and more generally for learning from structured data.
Contents:
Derivation reduction of metarules in meta-interpretive learning
Large-Scale Assessment of Deep Relational Machines
How much can experimental cost be reduced in active learning of agent strategies?
Diagnostics of Trains with Semantic Diagnostics Rules
The game of Bridge: a challenge for ILP
Sampling-Based SAT/ASP Multi-Model Optimization as a Framework for Probabilistic Inference
Explaining Black-box Classifiers with ILP - Empowering LIME with Aleph to Approximate Non-linear Decisions with Relational Rules
Learning Dynamics with Synchronous, Asynchronous and General Semantics
Was the Year 2000 a Leap Year? Step-wise Narrowing Theories with Metagol
Targeted End-to-end Knowledge Graph Decomposition.
Other Format:
Printed edition:
ISBN:
978-3-319-99960-9
9783319999609
Access Restriction:
Restricted for use by site license.

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