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Kategorie szczegółowe BISAC

Learning Theory: 17th Annual Conference on Learning Theory, Colt 2004, Banff, Canada, July 1-4, 2004, Proceedings

ISBN-13: 9783540222828 / Angielski / Miękka / 2004 / 654 str.

J. Shawe-Taylor; John Shawe-Taylor; Yoram Singer
Learning Theory: 17th Annual Conference on Learning Theory, Colt 2004, Banff, Canada, July 1-4, 2004, Proceedings Shawe-Taylor, John 9783540222828 Springer - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Learning Theory: 17th Annual Conference on Learning Theory, Colt 2004, Banff, Canada, July 1-4, 2004, Proceedings

ISBN-13: 9783540222828 / Angielski / Miękka / 2004 / 654 str.

J. Shawe-Taylor; John Shawe-Taylor; Yoram Singer
cena 401,58
(netto: 382,46 VAT:  5%)

Najniższa cena z 30 dni: 385,52
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This volume contains papers presented at the 17th Annual Conference on Le- ning Theory (previously known as the Conference on Computational Learning Theory) held in Ban?, Canada from July 1 to 4, 2004. The technical program contained 43 papers selected from 107 submissions, 3 open problems selected from among 6 contributed, and 3 invited lectures. The invited lectures were given by Michael Kearns on Game Theory, Automated Trading and Social Networks, Moses Charikar on Algorithmic Aspects of - nite Metric Spaces, and Stephen Boyd on Convex Optimization, Semide?nite Programming, and Recent Applications . These papers were not included in this volume. The Mark Fulk Award is presented annually for the best paper co-authored by a student. Thisyear theMark Fulk award wassupplemented with two further awards funded by the Machine Learning Journal and the National Information Communication Technology Centre, Australia (NICTA). We were therefore able toselectthreestudentpapersforprizes.ThestudentsselectedwereMagalieF- montforthesingle-authorpaper ModelSelectionbyBootstrapPenalizationfor Classi?cation, Daniel Reidenbach for the single-author paper On the Lear- bility of E-Pattern Languages over Small Alphabets, and Ran Gilad-Bachrach for the paper Bayes and Tukey Meet at the Center Point (co-authored with Amir Navot and Naftali Tishby)."

Kategorie:
Informatyka, Bazy danych
Kategorie BISAC:
Computers > Artificial Intelligence - General
Computers > Computer Science
Mathematics > Logic
Wydawca:
Springer
Seria wydawnicza:
Lecture Notes in Computer Science / Lecture Notes in Artific
Język:
Angielski
ISBN-13:
9783540222828
Rok wydania:
2004
Wydanie:
2004
Numer serii:
000304238
Ilość stron:
654
Waga:
1.50 kg
Wymiary:
27.94 x 21.59 x 3.38
Oprawa:
Miękka
Wolumenów:
01

Economics and Game Theory.- Towards a Characterization of Polynomial Preference Elicitation with Value Queries in Combinatorial Auctions.- Graphical Economics.- Deterministic Calibration and Nash Equilibrium.- Reinforcement Learning for Average Reward Zero-Sum Games.- OnLine Learning.- Polynomial Time Prediction Strategy with Almost Optimal Mistake Probability.- Minimizing Regret with Label Efficient Prediction.- Regret Bounds for Hierarchical Classification with Linear-Threshold Functions.- Online Geometric Optimization in the Bandit Setting Against an Adaptive Adversary.- Inductive Inference.- Learning Classes of Probabilistic Automata.- On the Learnability of E-pattern Languages over Small Alphabets.- Replacing Limit Learners with Equally Powerful One-Shot Query Learners.- Probabilistic Models.- Concentration Bounds for Unigrams Language Model.- Inferring Mixtures of Markov Chains.- Boolean Function Learning.- PExact = Exact Learning.- Learning a Hidden Graph Using O(log n) Queries Per Edge.- Toward Attribute Efficient Learning of Decision Lists and Parities.- Empirical Processes.- Learning Over Compact Metric Spaces.- A Function Representation for Learning in Banach Spaces.- Local Complexities for Empirical Risk Minimization.- Model Selection by Bootstrap Penalization for Classification.- MDL.- Convergence of Discrete MDL for Sequential Prediction.- On the Convergence of MDL Density Estimation.- Suboptimal Behavior of Bayes and MDL in Classification Under Misspecification.- Generalisation I.- Learning Intersections of Halfspaces with a Margin.- A General Convergence Theorem for the Decomposition Method.- Generalisation II.- Oracle Bounds and Exact Algorithm for Dyadic Classification Trees.- An Improved VC Dimension Bound for Sparse Polynomials.- A New PAC Bound for Intersection-Closed Concept Classes.- Clustering and Distributed Learning.- A Framework for Statistical Clustering with a Constant Time Approximation Algorithms for K-Median Clustering.- Data Dependent Risk Bounds for Hierarchical Mixture of Experts Classifiers.- Consistency in Models for Communication Constrained Distributed Learning.- On the Convergence of Spectral Clustering on Random Samples: The Normalized Case.- Boosting.- Performance Guarantees for Regularized Maximum Entropy Density Estimation.- Learning Monotonic Linear Functions.- Boosting Based on a Smooth Margin.- Kernels and Probabilities.- Bayesian Networks and Inner Product Spaces.- An Inequality for Nearly Log-Concave Distributions with Applications to Learning.- Bayes and Tukey Meet at the Center Point.- Sparseness Versus Estimating Conditional Probabilities: Some Asymptotic Results.- Kernels and Kernel Matrices.- A Statistical Mechanics Analysis of Gram Matrix Eigenvalue Spectra.- Statistical Properties of Kernel Principal Component Analysis.- Kernelizing Sorting, Permutation, and Alignment for Minimum Volume PCA.- Regularization and Semi-supervised Learning on Large Graphs.- Open Problems.- Perceptron-Like Performance for Intersections of Halfspaces.- The Optimal PAC Algorithm.- The Budgeted Multi-armed Bandit Problem.

Shawe-Taylor, John John Shawe Taylor is a Professor at the School of ... więcej >


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