Inductive Logic Programming - Info and Reading Options
17th International Conference, ILP 2007, Corvallis, or, USA, June 19-21, 2007, Revised Selected Papers
By Jesse Davis and Jan Ramon
"Inductive Logic Programming" was published by Springer in 2008 - Berlin, Heidelberg and the language of the book is English.
“Inductive Logic Programming” Metadata:
- Title: Inductive Logic Programming
- Authors: Jesse DavisJan Ramon
- Language: English
- Publisher: Springer
- Publish Date: 2008
- Publish Location: Berlin, Heidelberg
“Inductive Logic Programming” Subjects and Themes:
- Subjects: Logic programming
Edition Specifications:
- Pagination: 307
Edition Identifiers:
- The Open Library ID: OL34882732M - OL20707181W
- ISBN-13: 9783540784692
- All ISBNs: 9783540784692
AI-generated Review of “Inductive Logic Programming”:
"Inductive Logic Programming" Description:
Open Data:
Invited Talks -- Learning with Kernels and Logical Representations -- Beyond Prediction: Directions for Probabilistic and Relational Learning -- Extended Abstracts -- Learning Probabilistic Logic Models from Probabilistic Examples (Extended Abstract) -- Learning Directed Probabilistic Logical Models Using Ordering-Search -- Learning to Assign Degrees of Belief in Relational Domains -- Bias/Variance Analysis for Relational Domains -- Full Papers -- Induction of Optimal Semantic Semi-distances for Clausal Knowledge Bases -- Clustering Relational Data Based on Randomized Propositionalization -- Structural Statistical Software Testing with Active Learning in a Graph -- Learning Declarative Bias -- ILP :- Just Trie It -- Learning Relational Options for Inductive Transfer in Relational Reinforcement Learning -- Empirical Comparison of “Hard” and “Soft” Label Propagation for Relational Classification -- A Phase Transition-Based Perspective on Multiple Instance Kernels -- Combining Clauses with Various Precisions and Recalls to Produce Accurate Probabilistic Estimates -- Applying Inductive Logic Programming to Process Mining -- A Refinement Operator Based Learning Algorithm for the Description Logic -- Foundations of Refinement Operators for Description Logics -- A Relational Hierarchical Model for Decision-Theoretic Assistance -- Using Bayesian Networks to Direct Stochastic Search in Inductive Logic Programming -- Revising First-Order Logic Theories from Examples Through Stochastic Local Search -- Using ILP to Construct Features for Information Extraction from Semi-structured Text -- Mode-Directed Inverse Entailment for Full Clausal Theories -- Mining of Frequent Block Preserving Outerplanar Graph Structured Patterns -- Relational Macros for Transfer in Reinforcement Learning -- Seeing the Forest Through the Trees -- Building Relational World Models for Reinforcement Learning -- An Inductive Learning System for XML Documents
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