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Bayesian statistics 7 : proceedings of the Seventh Valencia International Meeting, dedicated to Dennis V. Lindley, June 2-6, 2002 Valencia International Meeting on Bayesian Statistics(著/文) - Clarendon Press
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Bayesian statistics 7 : proceedings of the Seventh Valencia International Meeting, dedicated to Dennis V. Lindley, June 2-6, 2002

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発行:Clarendon Press
価格情報なし
ISBN
978-0-19852615-5   COPY
ISBN 13
9780198526155   COPY
ISBN 10h
0-19852615-6   COPY
ISBN 10
0198526156   COPY
出版社在庫情報
不明
初版年月日
2003
登録日
2019年4月1日
最終更新日
2019年4月1日
このエントリーをはてなブックマークに追加

紹介

The Valencia International Meetings on Bayesian Statistics, held every four years, provide the main forum for researchers in the area of Bayesian Statistics to come together to present and discuss frontier developments in the field. The resulting proceedings provide a definitive, up-to-date overview encompassing a wide range of theoretical and applied research. This seventh Proceedings containing 23 invited articles and 31 contributed papers is no exception, and will be an indispensable reference to all statisticians.

目次

Arellano-Valle, R. B., Iglesias, P. L. and Vidal I.: Bayesian Inference for Elliptical Linear Models: Conjugate Analysis and Model Comparison
Blei, D. M., Jordan, M. I. and Ng, A. Y.: Hierarchical Bayesian Models for Applications in Information Retrieval
Carlin, B. P. and Banerjee, S.: Hierarchical Multivariate CAR Models for Spatio- Temporally Correlated Survival Data
Chib, S.: On Inferring Effects of Binary Treatments with Unobserved Confounders
Chipman, H. A., George, E. I. and McCulloch, R. E.: Bayesian Treed Generalized Linear Models
Davy, M. and Godsill, S. J.: Bayesian Harmonic Models for Musical Signal Analysis
Dobra, A., Fienberg, S. E. and Trottini, M.: Assessing the Risk of Disclosure of Confidential Categorical Data.
Genovese, C. and Wasserman, L: Bayesian and Frequentist Multiple Testing ... 145
Gutierrez-Pena, E. and Nieto-Barajas, L. E.: Nonparametric Inference for Mixed Poisson Processes
Higdon, D., Lee, H. and Holloman, C. : Markov chain Monte Carlo-based approaches for inference in computationally intensive inverse problems
Johnson, V. E., Graves, T. L., Hamada, M. S. and Shane, C.: Reese A Hierarchical Model for Estimating the Reliability of Complex Systems
Lauritzen, S. L.: Rasch Models with Exchangeable Rows and Columns
Linde, A. Van Der and Osius, G.: Discrimination Based on an Odds Ratio Parameterization
Liu, J. S., Zhang, J. L., Palumbo, M. J. and Charles, E.: Lawrence Bayesian Clustering with Variable and Transformation Selections
Mengersen, K. L. and Robert, C. P.: Iid Sampling using Self-Avoiding Population Monte Carlo: The Pinball Sampler
Newton, M. A., Yang H., Gorman, P., Tomlinson, I. and Roylance, R.: A Statistical Approach to Modeling Genomic Aberrations in Cancer Cells
Papaspiliopoulos, O., Roberts, G. O. and Skold, M.: Non-Centered Parameterisations for Hierarchical Models and Data Augmentation
Pena, D., Rodriguez, J. and Tiao, G. C.: Identifying Mixtures of Regression Equations by the SAR procedure
Quintana, J. M., Lourdes V., Aguilar, O. and Liu, J.: Global Gambling
Salinetti, G.: New Tools for Consistency in Bayesian Nonparametrics
Schervish, M. J., Seidenfeld T. and Kadane, J. B.: Measures of Incoherence: How not to Gamble if you Must
Wolpert, R. L., Ickstadt, K. and Hansen, M. B.: A Nonparametric Bayesian Approach to Inverse Problems
Zohar, R. and Geiger, D.: A Novel Framework for Tracking Groups of Objects
II. CONTRIBUTED PAPERS
Ausin, M. C., Lillo, R. E., Ruggeri, F. and Wiper, M. P. : Bayesian Modeling of Hospital Bed Occupancy Times using a Mixed Generalized Erlang Distribution
Beal, M. J. and Ghahramani, Z.: The Variational Bayesian EM Algorithm for Incomplete Data: With Application to Scoring Graphical Model Structures
Bernardo, J. M. and Juarez, M. A.: Intrinsic Estimation
Choy S. T. B., Chan J. S. K. and YamH. K.: Robust Analysis of Salamander Data, Generalized Linear Model with Random Effects
Daneshkhah, A. and Smith, Jim Q.: A Relationship Between Randomised Manipulation and Parameter Independence
Dethlefsen, C.: Markov Random Field Extensions using State Space Models
Erosheva, E. A.: Bayesian Estimation of the Grade of Membership Model
Esteves, L. G., Wechsler, S., Iglesias, P. L. and Pereira, A. L.: A Variant Version of the Polya-Eggenberger Urn Model
Ferreira, A. R., West, M., Lee, H. K. H., Higdon, D. and Bi, Z.: Multi-scale Modelling of 1-D Permeability Fields
Fraser, D. A. S., Reid, N., Wong, A. and Yi, G. Y.: Direct Bayes for Interest Parameters
Garside, L. M. and Wilkinson, D. J.: Dynamic Lattice-Markov Spatio-Temporal Models for Environmental Data
Gebousk'y, P., Karn'y, M. and Quinn, A.: Lymphoscintigraphy of Upper Limbs: A Bayesian Framework
Giron, F. J., Martinez, M. L., Moreno, E. and Torres, F.: Bayesian Analysis of Matched Pairs in the Presence of Covariates
Jamieson, L. E. and Brooks, S. P.: State Space Models for Density Dependence in Population Ecology
Lavine, M.: A Marginal Ergodic Theorem
Lefebvre, T., Gadeyne, K., Bruyninckx, H. and Schutter, J. D.: Exact Bayesian Inference for a Class of Nonlinear Systems with Application to Robotic Assembly
Leucari, V. and Consonni, G.: Compatible Priors for Causal Bayesian Networks
Mertens, B. J. A.: On the Application of Logistic Regression Modeling in Microarray Studies
Neal, R. M.: Dens ity Modeling and Clustering Using Dirichlet Diffusion Trees
Pettit, L. I. and Sugden, R. A.: Outl ier Robust Estimation of a Finite Population Total
Polson, N. G. and Stroud, J. R.: Bayesian Inference f or Derivative Prices
Rasmussen, C. E.: Gaussian Processes to Speed up Hybrid Monte Carlo for Expensive Bayesian Integrals
Rodriguez, A., Alvarez, G. and Sanso, B.: Objective Bayesian Comparison of Laplace Samples from Geophysical Data
Scott, S. L. and Smyth, P.: The Markov Modulated Poisson Process and Markov Poisson Cascade with Applications to Web Traffic Modeling
Smith, E. L. and Walshaw, D.: Modelling Bivariate Extremes in a Region
Vehtari, and Lampinen, J.: Expected Utility Estimation via Cross-Validation
Virto, M., Martin, J., Rios-Insua, D. and Moreno-Diaz, A.: A Method for Sequential Optimization in Bayesian Analysis
Wakefield, J. C., Zhou, C. and Self, S. G.: Modelling Gene Expression Data over Time: Curve Clustering with Informative Prior Distributions
West, M: Bayesian Factor Regression Models in the Large p, Small n Paradigm
Zheng, P. and Marriott, J. M.: A Bayesian Analysis of Smooth Transitions in Trend
Tamminen, T. and Lampinen. J: Bayesian Object Matching with Hierarchical Priors and Markov Chain Monte Carlo

上記内容は本書刊行時のものです。