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Multivariate Bayesian Statistics by Daniel B Rowe
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1A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction
By Wendt, Robert D. T.
Previous research in statistical post-processing has found systematic deficiencies in deterministic forecast guidance. As a result, ensemble forecasts of sensible weather variables often manifest biased central tendencies and anomalous dispersion. In this way, the numerical weather prediction community has largely focused on upgrades to upstream model components to improve forecast performance--that is, innovations in data assimilation, governing dynamics, numerical techniques, and various parameterizations of subgrid-scale processes. However, this dissertation explores the efficacy of statistical post-processing methods downstream of these dynamical model components with a hierarchical multivariate Bayesian approach to ensemble model output statistics. This technique directly parameterizes meteorological phenomena with probability distributions that describe the intrinsic structure of observable data. Bayesian posterior beliefs in model parameter were conditioned on previous observations and dynamical predictors available outside of the parent ensemble. An adaptive variant of the random-walk Metropolis algorithm was used to complete the inference scheme with block-wise multiparameter updates. This produced calibrated multivariate posterior predictive distributions (PPD) for 24-hour forecasts of diurnal extrema in surface temperature and wind speed. These Bayesian PPDs reliably characterized forecast uncertainty and outperformed the parent ensemble and a classical least-squares approach to multivariate multiple linear regression using both measures-oriented and distributions-oriented scoring rules.
“A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction” Metadata:
- Title: ➤ A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction
- Author: Wendt, Robert D. T.
- Language: English
“A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction” Subjects and Themes:
- Subjects: ➤ ensemble model output statistics - statistical post-processing - multivariate multiple linear regression - Bayesian data analysis - Bayesian hierarchical modeling - Markov chain Monte Carlo methods - Metropolis algorithm - machine learning - atmospheric prediction
Edition Identifiers:
- Internet Archive ID: ahierarchicalmul1094556188
Downloads Information:
The book is available for download in "texts" format, the size of the file-s is: 102.77 Mbs, the file-s for this book were downloaded 32 times, the file-s went public at Sat May 04 2019.
Available formats:
Abbyy GZ - Archive BitTorrent - DjVuTXT - Djvu XML - Item Tile - Metadata - Scandata - Single Page Processed JP2 ZIP - Text PDF -
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2DTIC AD1046945: A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction
By Defense Technical Information Center
Previous research in statistical post-processing has found systematic deficiencies in deterministic forecast guidance. As a result, ensemble forecasts of sensible weather variables often manifest biased central tendencies and anomalous dispersion. In this way, the numerical weather prediction community has largely focused on upgrades to upstream model components to improve forecast performancethat is, innovations in data assimilation, governing dynamics, numerical techniques, and various parameterizations of subgrid-scale processes. However, this dissertation explores the efficacy of statistical post-processing methods downstream of these dynamical model components with a hierarchical multivariate Bayesian approach to ensemble model output statistics. This technique directly parameterizes meteorological phenomena with probability distributions that describe the intrinsic structure of observable data. Bayesian posterior beliefs in model parameter were conditioned on previous observations and dynamical predictors available outside of the parent ensemble. An adaptive variant of the random-walk Metropolis algorithm was used to complete the inference scheme with block-wise multiparameter updates. This produced calibrated multivariate posterior predictive distributions (PPD) for 24-hour forecasts of diurnal extrema in surface temperature and wind speed. These Bayesian PPDs reliably characterized forecast uncertainty and outperformed the parent ensemble and a classical least-squares approach to multivariate multiple linear regression using both measures-oriented and distributions-oriented scoring rules.
“DTIC AD1046945: A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction” Metadata:
- Title: ➤ DTIC AD1046945: A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction
- Author: ➤ Defense Technical Information Center
- Language: English
“DTIC AD1046945: A Hierarchical Multivariate Bayesian Approach To Ensemble Model Output Statistics In Atmospheric Prediction” Subjects and Themes:
- Subjects: ➤ DTIC Archive - Wendt,Robert D T - Naval Postgraduate School Monterey United States - theses - bayes networks - hierarchies - models - statistics - predictions - markov chains - monte carlo method - weather forecasting - machine learning
Edition Identifiers:
- Internet Archive ID: DTIC_AD1046945
Downloads Information:
The book is available for download in "texts" format, the size of the file-s is: 116.31 Mbs, the file-s for this book were downloaded 76 times, the file-s went public at Fri May 01 2020.
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Abbyy GZ - Archive BitTorrent - DjVuTXT - Djvu XML - Item Tile - Metadata - OCR Page Index - OCR Search Text - Page Numbers JSON - Scandata - Single Page Processed JP2 ZIP - Text PDF - chOCR - hOCR -
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- Whefi.com: Download
- Whefi.com: Review - Coverage
- Internet Archive: Details
- Internet Archive Link: Downloads
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Source: LibriVox
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Available audio books for downloads from LibriVox
1Jane Shore: A Tragedy
By Nicholas Rowe

Covering some of the plot of Shakespeare's Richard III, Jane Shore focuses on the mistress of the late Edward IV, also known as "The White Queen". In this short tragedy, Jane tries to thwart Richard's rise to power while experiencing love, betrayal, forgiveness, and an unexpected visitor who arrives in disguise. (Summary by Wendy Katz Hiller)<br><br><b>Cast List</b><br><br>Lord Hastings: <a href="https://librivox.org/reader/15193">Tchaikovsky</a><br> Duke of Gloster: <a href="https://librivox.org/reader/6754">ToddHW</a><br> Belmour: <a href="https://librivox.org/reader/13577">Adrian Stephens</a><br> Sir Richard Ratcliffe: <a href="https://librivox.org/reader/12980">Wayne Cooke</a><br> Sir William Catesby: <a href="https://librivox.org/reader/7170">Alan Mapstone</a><br> Dumont: <a href="https://librivox.org/reader/10789"></a>Tomas Peter<br> Jane Shore: <a href="https://librivox.org/reader/7026">Michele Eaton</a><br> Alicia: <a href="https://librivox.org/reader/15373"></a>WendyKatzHiller<br> Jane's Servant: <a href="https://librivox.org/reader/8425">Larry Wilson</a><br> Alicia's Servant: <a href="https://librivox.org/reader/16187">B. Jones</a><br> Stage Directions: <a href="https://librivox.org/reader/15898">Adrienne Prevost</a><br>
“Jane Shore: A Tragedy” Metadata:
- Title: Jane Shore: A Tragedy
- Author: Nicholas Rowe
- Language: English
- Publish Date: 0
Edition Specifications:
- Format: Audio
- Number of Sections: 5
- Total Time: 01:36:47
Edition Identifiers:
- libriVox ID: 16493
Links and information:
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- File Name: janeshore_2109_librivox
- File Format: zip
- Total Time: 01:36:47
- Download Link: Download link
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