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عنوان
Classification, Clustering, and Data Mining Applications :

پدید آورنده
edited by David Banks, Frederick R. McMorris, Phipps Arabie, Wolfgang Gaul.

موضوع
Culture -- Study and teaching.,Data structures (Computer science),Library science.

رده
QA278
.
E358
2004

کتابخانه
Center and Library of Islamic Studies in European Languages

محل استقرار
استان: Qom ـ شهر: Qom

Center and Library of Islamic Studies in European Languages

تماس با کتابخانه : 32910706-025

INTERNATIONAL STANDARD BOOK NUMBER

(Number (ISBN
3642171036
(Number (ISBN
9783642171031

NATIONAL BIBLIOGRAPHY NUMBER

Number
b567095

TITLE AND STATEMENT OF RESPONSIBILITY

Title Proper
Classification, Clustering, and Data Mining Applications :
General Material Designation
[Book]
Other Title Information
Proceedings of the Meeting of the International Federation of Classification Societies (IFCS), Illinois Institute of Technology, Chicago, 15-18 July 2004
First Statement of Responsibility
edited by David Banks, Frederick R. McMorris, Phipps Arabie, Wolfgang Gaul.

.PUBLICATION, DISTRIBUTION, ETC

Place of Publication, Distribution, etc.
Berlin, Heidelberg
Name of Publisher, Distributor, etc.
Springer Berlin Heidelberg : Imprint: Springer
Date of Publication, Distribution, etc.
2004

PHYSICAL DESCRIPTION

Specific Material Designation and Extent of Item
(XIV, 658 p. :)

SERIES

Series Title
Studies in classification, data analysis, and knowledge organization

GENERAL NOTES

Text of Note
Bibliographic Level Mode of Issuance: Monograph.

CONTENTS NOTE

Text of Note
I New Methods in Cluster Analysis --; Thinking Ultrametrically --; Clustering by Vertex Density in a Graph --; Clustering by Ant Colony Optimization --; A Dynamic Cluster Algorithm Based on Lr Distances for Quantitative Data --; The Last Step of a New Divisive Monothetic Clustering Method: the Gluing-Back Criterion --; Standardizing Variables in K-means Clustering --; A Self-Organizing Map for Dissimilarity Data --; Another Version of the Block EM Algorithm --; Controlling the Level of Separation of Components in Monte Carlo Studies of Latent Class Models --; Fixing Parameters in the Constrained Hierarchical Classification Method: Application to Digital Image Segmentation --; New Approaches for Sum-of-Diameters Clustering --; Spatial Pyramidal Clustering Based on a Tessellation --; II Modern Nonparametrics --; Relative Projection Pursuit and its Application --; Priors for Neural Networks --; Combining Models in Discrete Discriminant Analysis Through a Committee of Methods --; Phoneme Discrimination with Functional Multi-Layer Perceptrons --; PLS Approach for Clusterwise Linear Regression on Functional Data --; On Classification and Regression Trees for Multiple Responses --; Subsetting Kernel Regression Models Using Genetic Algorithm and the Information Measure of Complexity --; Cherry-Picking as a Robustness Tool --; III Classification and Dimension Reduction --; Academic Obsessions and Classification Realities: Ignoring Practicalities in Supervised Classification --; Modified Biplots for Enhancing Two-Class Discriminant Analysis --; Weighted Likelihood Estimation of Person Locations in an Unfolding Model for Polytomous Responses --; Classification of Geospatial Lattice Data and their Graphical Representation --; Degenerate Expectation-Maximization Algorithm for Local Dimension Reduction --; A Dimension Reduction Technique for Local Linear Regression --; Reducing the Number of Variables Using Implicative Analysis --; Optimal Discretization of Quantitative Attributes for Association Rules --; IV Symbolic Data Analysis --; Clustering Methods in Symbolic Data Analysis --; Dependencies in Bivariate Interval-Valued Symbolic Data --; Clustering of Symbolic Objects Described by Multi-Valued and Modal Variables --; A Hausdorff Distance Between Hyper-Rectangles for Clustering Interval Data --; Kolmogorov-Smirnov for Decision Trees on Interval and Histogram Variables --; Dynamic Cluster Methods for Interval Data Based on Mahalanobis Distances --; A Symbolic Model-Based Approach for Making Collaborative Group Recommendations --; Probabilistic Allocation of Aggregated Statistical Units in Classification Trees for Symbolic Class Description --; Building Small Scale Models of Multi-Entity Databases by Clustering --; V Taxonomy and Medicine --; Phylogenetic Closure Operations and Homoplasy-Free Evolution --; Consensus of Classification Systems, with Adams' Results Revisited --; Symbolic Linear Regression with Taxonomies --; Determining Horizontal Gene Transfers in Species Classification: Unique Scenario --; Active and Passive Learning to Explore a Complex Metabolism Data Set --; Mathematical and Statistical Modeling of Acute Inflammation --; Combining Functional MRI Data on Multiple Subjects --; Classifying the State of Parkinsonism by Using Electronic Force Platform Measures of Balance --; Subject Filtering for Passive Biometric Monitoring --; VI Text Mining --; Mining Massive Text Data and Developing Tracking Statistics --; Contributions of Textual Data Analysis to Text Retrieval --; Automated Resolution of Noisy Bibliographic References --; Choosing the Right Bigrams for Information Retrieval --; A Mixture Clustering Model for Pseudo Feedback in Information Retrieval --; Analysis of Cross-Language Open-Ended Questions Through MFACT --; Inferring User's Information Context from User Profiles and Concept Hierarchies --; Database Selection for Longer Queries --; VII Contingency Tables and Missing Data --; An Overview of Collapsibility --; Generalized Factor Analyses for Contingency Tables --; A PLS Approach to Multiple Table Analysis --; Simultaneous Rowand Column Partitioning in Several Contingency Tables --; Missing Data and Imputation Methods in Partition of Variables --; The Treatment of Missing Values and its Effect on Classifier Accuracy --; Clustering with Missing Values: No Imputation Required.

SUMMARY OR ABSTRACT

Text of Note
Modern data analysis stands at the interface of statistics, computer science, and discrete mathematics. This volume describes new methods in this area, with special emphasis on classification and cluster analysis. Those methods are applied to problems in information retrieval, phylogeny, medical diagnosis, microarrays, and other active research areas.

TOPICAL NAME USED AS SUBJECT

Culture -- Study and teaching.
Data structures (Computer science)
Library science.

LIBRARY OF CONGRESS CLASSIFICATION

Class number
QA278
Book number
.
E358
2004

PERSONAL NAME - PRIMARY RESPONSIBILITY

edited by David Banks, Frederick R. McMorris, Phipps Arabie, Wolfgang Gaul.

PERSONAL NAME - ALTERNATIVE RESPONSIBILITY

David Banks
Frederick R McMorris
International Federation of Classification Societies. Conference
Phipps Arabie
Wolfgang Gaul

ELECTRONIC LOCATION AND ACCESS

Electronic name
 مطالعه متن کتاب 

[Book]

Y

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