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  • Search: isPartOf:"Statistical Applications in Genetics and Molecular Biology"
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multiple testing 28 gene expression 21 microarray 15 microarrays 14 bootstrap 11 false discovery rate 11 classification 10 null distribution 10 variable selection 10 cross-validation 9 Type I error rate 8 asymptotic control 8 model selection 8 prediction 7 Adjusted p-value 6 empirical Bayes 6 Microarrays 5 censoring 5 consistency 5 differential expression 5 machine learning 5 maximum likelihood 5 meta-analysis 5 multiple comparisons 5 normalization 5 EM algorithm 4 FDR 4 Markov chain Monte Carlo 4 SNP 4 augmentation 4 case-control 4 clustering 4 cut-off 4 family-wise error rate 4 generalized family-wise error rate 4 genetics 4 hidden Markov model 4 loss-based estimation 4 mass spectrometry 4 microarray analysis 4
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Undetermined 775
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Article 775
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Undetermined 775
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Laan, Mark van der 35 van der Laan Mark J. 19 Dudoit, Sandrine 12 Hubbard, Alan 10 Pollard, Katherine 9 Rongling, Wu 9 Sinisi, Sandra 8 Bickel David R. 7 Keles, Sunduz 7 R, Segal Mark 7 Sandrine, Dudoit 7 Birkner, Merrill 6 Derek, Gordon 6 Dirk, Husmeier 6 J, Finch Stephen 6 Joseph, Beyene 6 Segal, Mark 6 Hubbard Alan E. 5 Sunduz, Keles 5 Thomas, Lengauer 5 Tomasz, Burzykowski 5 Ziv, Shkedy 5 Beyene, Joseph 4 Bickel, David 4 Boulesteix, Anne-Laure 4 Brad, McNeney 4 Burzykowski, Tomasz 4 Chad, Haynes 4 Dan, Lin 4 Eisen, Michael 4 Hongyu, Zhao 4 Jinko, Graham 4 Paul, Joyce 4 Pollard Katherine S. 4 Polley, Eric 4 Shkedy, Ziv 4 Smith, Martyn 4 Sylvia, Richardson 4 Tibshirani Robert J. 4 Wu, Rongling 4
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Statistical Applications in Genetics and Molecular Biology 775
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RePEc 775
Showing 461 - 470 of 775
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A Comparison of Normalization Techniques for MicroRNA Microarray Data
Youlan, Rao; Yoonkyung, Lee; David, Jarjoura; S, Ruppert Amy - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 1, pp. 1-20
Normalization of expression levels applied to microarray data can help in reducing measurement error. Different methods, including cyclic loess, quantile normalization and median or mean normalization, have been utilized to normalize microarray data. Although there is considerable literature...
Persistent link: https://www.econbiz.de/10008460286
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Predicting Protein Concentrations with ELISA Microarray Assays, Monotonic Splines and Monte Carlo Simulation
Simone, Daly Don; K, Anderson Kevin; M, White Amanda; … - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 1, pp. 1-21
Making sound proteomic inferences using ELISA microarray assay requires both an accurate prediction of protein concentration and a credible estimate of its error. We present a method using monotonic spline statistical models (MS), penalized constrained least squares fitting (PCLS) and Monte...
Persistent link: https://www.econbiz.de/10008460294
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International Competition on Mass Spectrometry Proteomic Diagnosis
Bart, Mertens - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 2, pp. 1-4
This editorial describes a special issue of Statistical Applications in Genetics and Molecular Biology that presents a …
Persistent link: https://www.econbiz.de/10008460297
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Statistical Methods in Integrative Analysis for Gene Regulatory Modules
Lingmin, Zeng; Jing, Wu; Jun, Xie - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 1, pp. 1-23
We propose a suite of statistical methods for inferring a cis-regulatory module, which is a combination of several transcription factors binding in the promoter regions to regulate gene expression. The approach is an integrative analysis that combines information from multiple types of...
Persistent link: https://www.econbiz.de/10008460300
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Supervised Distance Matrices
Pollard Katherine S.; van der Laan Mark J. - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 1, pp. 1-30
We introduce a novel statistical concept, called a supervised distance matrix, which quantifies pairwise similarity between variables in terms of their association with an outcome. Supervised distance matrices are derived in two stages. First, the observed data is transformed based on particular...
Persistent link: https://www.econbiz.de/10008460314
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Autocorrelated Logistic Ridge Regression for Prediction Based on Proteomics Spectra
J, Goeman Jelle - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 2, pp. 1-12
This paper presents autocorrelated logistic ridge regression, an extension of logistic ridge regression for ordered covariates that is based on the assumption that adjacent covariates have similar regression coefficients. The method is applied to the analysis of proteomics mass spectra.
Persistent link: https://www.econbiz.de/10008460316
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Structure Learning in Nested Effects Models
Achim, Tresch; Florian, Markowetz - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 1, pp. 1-28
Nested Effects Models (NEMs) are a class of graphical models introduced to analyze the results of gene perturbation screens. NEMs explore noisy subset relations between the high-dimensional outputs of phenotyping studies, e.g., the effects showing in gene expression profiles or as morphological...
Persistent link: https://www.econbiz.de/10008460323
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A Unification of Multivariate Methods for Meta-Analysis of Genetic Association Studies
G, Bagos Pantelis - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 1, pp. 1-35
Methods for multivariate meta-analysis of genetic association studies are reviewed, summarized and presented in a unified framework. Modifications of standard models are described in detail in order to be applied in genetic association studies. The model based on summary data is uniformly...
Persistent link: https://www.econbiz.de/10008460327
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Semi-Parametric Differential Expression Analysis via Partial Mixture Estimation
David, Rossell; Rudy, Guerra; Clayton, Scott - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 1, pp. 1-29
We develop an approach for microarray differential expression analysis, i.e. identifying genes whose expression levels differ between two or more groups. Current approaches to inference rely either on full parametric assumptions or on permutation-based techniques for sampling under the null...
Persistent link: https://www.econbiz.de/10008460332
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Application of the Random Forest Classification Method to Peaks Detected from Mass Spectrometric Proteomic Profiles of Cancer Patients and Controls
H, Barrett Jennifer; A, Cairns David - In: Statistical Applications in Genetics and Molecular Biology 7 (2008) 2, pp. 1-22
The random forest classification method was applied to classify samples from 76 breast cancer patients and 77 controls whose proteomic profile had been obtained using mass spectrometry. The analysis consisted of two stages, the detection of peaks from the profiles and the construction of a...
Persistent link: https://www.econbiz.de/10008460338
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