Logic For Learning Learning Comprehensible Theories From Structured Data - Info and Reading Options
By John W. Lloyd

"Logic For Learning Learning Comprehensible Theories From Structured Data" was published by Springer in 2010 - Berlin Heidelberg and it has 257 pages.
“Logic For Learning Learning Comprehensible Theories From Structured Data” Metadata:
- Title: ➤ Logic For Learning Learning Comprehensible Theories From Structured Data
- Author: John W. Lloyd
- Number of Pages: 257
- Publisher: Springer
- Publish Date: 2010
- Publish Location: Berlin Heidelberg
“Logic For Learning Learning Comprehensible Theories From Structured Data” Subjects and Themes:
- Subjects: ➤ Information theory - Data structures (Computer science) - Computer science - Artificial intelligence - Structured programming - Machine learning - Logic, symbolic and mathematical
Edition Identifiers:
- The Open Library ID: OL26072932M - OL17486321W
- ISBN-13: 9783642075537 - 9783662084069
- All ISBNs: 9783642075537 - 9783662084069
AI-generated Review of “Logic For Learning Learning Comprehensible Theories From Structured Data”:
"Logic For Learning Learning Comprehensible Theories From Structured Data" Description:
Open Data:
This book is concerned with the rich and fruitful interplay between the fields of computational logic and machine learning. The intended audience is senior undergraduates, graduate students, and researchers in either of those fields. For those in computational logic, no previous knowledge of machine learning is assumed, and for those in machine learning no previous knowledge of computational logic is assumed.The logic used throughout the book is a higher-order one, since higher-order functions can have other functions as arguments and this capability can be exploited to provide abstractions for knowledge representation, methods for constructing predicates, and a foundation for logic-based computation. The book should be of interest to researchers in machine learning, especially those who study learning methods for structured data. Throughout, great emphasis is placed on learning comprehensible theories. The book serves as an introduction for computational logicians to machine learning, a particularly interesting and important application area of logic, and also provides a foundation for functional logic programming languages
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