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Kategorie szczegółowe BISAC

Machine Learning: ECML-94: European Conference on Machine Learning, Catania, Italy, April 6-8, 1994. Proceedings

ISBN-13: 9783540578680 / Angielski / Miękka / 1994 / 447 str.

Francesco Bergadano;Luc de Raedt
Machine Learning: ECML-94: European Conference on Machine Learning, Catania, Italy, April 6-8, 1994. Proceedings Francesco Bergadano, Luc de Raedt 9783540578680 Springer-Verlag Berlin and Heidelberg GmbH &  - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Machine Learning: ECML-94: European Conference on Machine Learning, Catania, Italy, April 6-8, 1994. Proceedings

ISBN-13: 9783540578680 / Angielski / Miękka / 1994 / 447 str.

Francesco Bergadano;Luc de Raedt
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This volume contains the proceedings of the European Conference on Machine Learning 1994, which continues the tradition of earlier meetings and which is a major forum for the presentation of the latest and most significant results in machine learning.
Machine learning is one of the most important subfields of artificial intelligence and computer science, as it is concerned with the automation of learning processes.
This volume contains two invited papers, 19 regular papers, and 25 short papers carefully reviewed and selected from in total 88 submissions.
The papers describe techniques, algorithms, implementations, and experiments in the area of machine learning.

Kategorie:
Informatyka, Bazy danych
Kategorie BISAC:
Computers > Artificial Intelligence - General
Wydawca:
Springer-Verlag Berlin and Heidelberg GmbH &
Seria wydawnicza:
Lecture Notes in Computer Science
Język:
Angielski
ISBN-13:
9783540578680
Rok wydania:
1994
Dostępne języki:
Angielski
Wydanie:
1994
Numer serii:
000120746
Ilość stron:
447
Waga:
1.43 kg
Wymiary:
23.323.3 x 15.5
Oprawa:
Miękka
Wolumenów:
01
Dodatkowe informacje:
Wydanie ilustrowane

Industrial applications of ML: Illustrations for the KAML dilemma and the CBR dream.- Knowledge representation in machine learning.- Inverting implication with small training sets.- A context similarity measure.- Incremental learning of control knowledge for nonlinear problem solving.- Characterizing the applicability of classification algorithms using meta-level learning.- Inductive learning of characteristic concept descriptions from small sets of classified examples.- FOSSIL: A robust relational learner.- A multistrategy learning system and its integration into an interactive floorplanning tool.- Bottom-up induction of oblivious read-once decision graphs.- Estimating attributes: Analysis and extensions of RELIEF.- BMWk revisited generalization and formalization of an algorithm for detecting recursive relations in term sequences.- An analytic and empirical comparison of two methods for discovering probabilistic causal relationships.- Sample PAC-learnability in model inference.- Averaging over decision stumps.- Controlling constructive induction in CIPF: An MDL approach.- Using constraints to building version spaces.- On the utility of predicate invention in inductive logic programming.- Learning problem-solving concepts by reflecting on problem solving.- Existence and nonexistence of complete refinement operators.- A hybrid nearest-neighbor and nearest-hyperrectangle algorithm.- Automated knowledge acquisition for Prospector-like expert systems.- On the role of machine learning in knowledge-based control.- Discovering dynamics with genetic programming.- A geometric approach to feature selection.- Identifying unrecognizable regular languages by queries.- Intensional learning of logic programs.- Partially isomorphic generalization and analogical reasoning.- Learning from recursive, tree structured examples.- Concept formation in complex domains.- An algorithm for learning hierarchical classifiers.- Learning belief network structure from data under causal insufficiency.- Cost-sensitive pruning of decision trees.- An instance-based learning method for databases: An information theoretic approach.- Early screening for gastric cancer using machine learning techniques.- DP1: Supervised and unsupervised clustering.- Using machine learning techniques to interpret results from discrete event simulation.- Flexible integration of multiple learning methods into a problem solving architecture.- Concept sublattices.- The piecewise linear classifier DIPOL92.- Complexity of computing generalized VC-dimensions.- Learning relations without closing the world.- Properties of Inductive Logic Programming in function-free Horn logic.- Representing biases for Inductive Logic Programming.- Biases and their effects in Inductive Logic Programming.- Inductive learning of normal clauses.

Luc De Raedt is currently a full professor (C4) of computer science at the Albert-Ludwigs-University Freiburg and head of the Machine Learning lab. Before coming to Freiburg in 1999, he held positions as (parttime) senior lecturer, lecturer and assistant at the Department of Computer Science of the Katholieke Universiteit Leuven (Belgium) and as post-doc of the Fund for Scientific Research, Flanders. He obtained his undergraduate degree as well as his Ph.D. in computer science from the Katholieke Universiteit Leuven (Belgium) in 1986 and 1991. His Ph.D. thesis was subsequently published by Academic Press.
De Raedt has a rich experience in European Union research projects. He (co-)coordinated the successful ESPRIT III and IV Inductive Logic Programming (1 and 2) projects, coordinated the IST assessment project APrIL, and the Marie Curie Training Site DAISY (Foundations of Intelligent Systems). He is at present also involved in the European IST-FET project cInQ belonging to FP5. De Raedt has (co)-organised several international workshops and conferences.



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