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Handbook of Bayesian variable selection / 1st ed

Handbook of Bayesian variable selection / 1st ed

자료유형
단행본
개인저자
Tadesse, Mahlet, editor. Vannucci, Marina, 1966-, editor.
서명 / 저자사항
Handbook of Bayesian variable selection / [edited by] Mahlet Tadesse, Marina Vannucci.
판사항
1st ed.
발행사항
Boca Raton :   CRC Press,   2022.  
형태사항
xxiii, 466 p. : ill. ; 27 cm.
ISBN
9780367543761 9780367543785
서지주기
Includes bibliographical references and index.
일반주제명
Bayesian statistical decision theory. Variables (Mathematics). Regression analysis.
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245 0 0 ▼a Handbook of Bayesian variable selection / ▼c [edited by] Mahlet Tadesse, Marina Vannucci.
250 ▼a 1st ed.
260 ▼a Boca Raton : ▼b CRC Press, ▼c 2022.
264 1 ▼a Boca Raton : ▼b CRC Press, ▼c 2022.
300 ▼a xxiii, 466 p. : ▼b ill. ; ▼c 27 cm.
336 ▼a text ▼b txt ▼2 rdacontent
337 ▼a unmediated ▼b n ▼2 rdamedia
338 ▼a volume ▼b nc ▼2 rdacarrier
504 ▼a Includes bibliographical references and index.
650 0 ▼a Bayesian statistical decision theory.
650 0 ▼a Variables (Mathematics).
650 0 ▼a Regression analysis.
700 1 ▼a Tadesse, Mahlet, ▼e editor.
700 1 ▼a Vannucci, Marina, ▼d 1966-, ▼e editor.
945 ▼a ITMT

소장정보

No. 소장처 청구기호 등록번호 도서상태 반납예정일 예약 서비스
No. 1 소장처 과학도서관/Sci-Info(2층서고)/ 청구기호 519.542 H236 등록번호 121261968 도서상태 대출가능 반납예정일 예약 서비스 B M

컨텐츠정보

목차

1. Discrete Spike-and-Slab Priors: Models and Computational Aspects
2. Recent Theoretical Advances with the Discrete Spike-and-Slab Priors
3. Theoretical and Computational Aspects of Continuous Spike-and-Slab Priors
4. Spike-and-Slab Meets LASSO: A Review of the Spike-and-Slab LASSO
5. Adaptive Computational Methods for Bayesian Variable Selection
6. Theoretical guarantees for the horseshoe and other global-local shrinkage priors
7. MCMC for Global-Local Shrinkage Priors in High-Dimensional Settings
8. Variable Selection with Shrinkage Priors via Sparse Posterior Summaries
9. Bayesian Model Averaging in Causal Inference
10. Variable Selection for Hierarchically-Related Outcomes: Models and Algorithms
11. Bayesian variable selection in spatial regression models
12. Effect Selection and Regularization in Structured Additive Distributional Regression
13. Sparse Bayesian State-Space and Time-Varying Parameter Models
14. Bayesian estimation of single and multiple graphs
15. Bayes Factors Based on g-Priors for Variable Selection
16. Balancing Sparsity and Power: Likelihoods, Priors, and Misspecification
17. Variable Selection and Interaction Detection with Bayesian Additive Regression Trees
18. Variable Selection for Bayesian Decision Tree Ensembles
19. Stochastic Partitioning for Variable Selection in Multivariate Mixture of Regression Models

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