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04021nam a2200517 4500 |
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978-3-540-46769-4 |
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DE-He213 |
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20191023112342.0 |
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121227s1999 gw | s |||| 0|eng d |
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|a 9783540467694
|9 978-3-540-46769-4
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|a 10.1007/3-540-46769-6
|2 doi
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|a Q334-342
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|a 006.3
|2 23
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|a Algorithmic Learning Theory
|h [electronic resource] :
|b 10th International Conference, ALT '99 Tokyo, Japan, December 6-8, 1999 Proceedings /
|c edited by Osamu Watanabe, Takashi Yokomori.
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|a 1st ed. 1999.
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|a Berlin, Heidelberg :
|b Springer Berlin Heidelberg :
|b Imprint: Springer,
|c 1999.
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|a XII, 372 p.
|b online resource.
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|a text
|b txt
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|a computer
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|a online resource
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|b PDF
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|a Lecture Notes in Artificial Intelligence ;
|v 1720
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|a Invited Lectures -- Tailoring Representations to Different Requirements -- Theoretical Views of Boosting and Applications -- Extended Stochastic Complexity and Minimax Relative Loss Analysis -- Regular Contributions -- Algebraic Analysis for Singular Statistical Estimation -- Generalization Error of Linear Neural Networks in Unidentifiable Cases -- The Computational Limits to the Cognitive Power of the Neuroidal Tabula Rasa -- The Consistency Dimension and Distribution-Dependent Learning from Queries (Extended Abstract) -- The VC-Dimension of Subclasses of Pattern Languages -- On the V ? Dimension for Regression in Reproducing Kernel Hilbert Spaces -- On the Strength of Incremental Learning -- Learning from Random Text -- Inductive Learning with Corroboration -- Flattening and Implication -- Induction of Logic Programs Based on ?-Terms -- Complexity in the Case Against Accuracy: When Building One Function-Free Horn Clause Is as Hard as Any -- A Method of Similarity-Driven Knowledge Revision for Type Specializations -- PAC Learning with Nasty Noise -- Positive and Unlabeled Examples Help Learning -- Learning Real Polynomials with a Turing Machine -- Faster Near-Optimal Reinforcement Learning: Adding Adaptiveness to the E3 Algorithm -- A Note on Support Vector Machine Degeneracy -- Learnability of Enumerable Classes of Recursive Functions from "Typical" Examples -- On the Uniform Learnability of Approximations to Non-recursive Functions -- Learning Minimal Covers of Functional Dependencies with Queries -- Boolean Formulas Are Hard to Learn for Most Gate Bases -- Finding Relevant Variables in PAC Model with Membership Queries -- General Linear Relations among Different Types of Predictive Complexity -- Predicting Nearly as Well as the Best Pruning of a Planar Decision Graph -- On Learning Unions of Pattern Languages and Tree Patterns.
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|a Artificial intelligence.
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|a Mathematical logic.
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|a Algorithms.
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|a Artificial Intelligence.
|0 http://scigraph.springernature.com/things/product-market-codes/I21000
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|a Mathematical Logic and Formal Languages.
|0 http://scigraph.springernature.com/things/product-market-codes/I16048
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|a Algorithm Analysis and Problem Complexity.
|0 http://scigraph.springernature.com/things/product-market-codes/I16021
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|a Watanabe, Osamu.
|e editor.
|4 edt
|4 http://id.loc.gov/vocabulary/relators/edt
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|a Yokomori, Takashi.
|e editor.
|4 edt
|4 http://id.loc.gov/vocabulary/relators/edt
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|a SpringerLink (Online service)
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|t Springer eBooks
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|i Printed edition:
|z 9783662165096
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|i Printed edition:
|z 9783540667483
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|a Lecture Notes in Artificial Intelligence ;
|v 1720
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|u https://doi.org/10.1007/3-540-46769-6
|z Full Text via HEAL-Link
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|a ZDB-2-SCS
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|a ZDB-2-LNC
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|a ZDB-2-BAE
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|a Computer Science (Springer-11645)
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