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  • Online Resource  (4)
  • Sutton, Matthew  (4)
  • 1
    Online Resource
    Online Resource
    Wiley ; 2018
    In:  Statistics in Medicine Vol. 37, No. 23 ( 2018-10-15), p. 3338-3356
    In: Statistics in Medicine, Wiley, Vol. 37, No. 23 ( 2018-10-15), p. 3338-3356
    Abstract: Integrative analysis of high dimensional omics datasets has been studied by many authors in recent years. By incorporating prior known relationships among the variables, these analyses have been successful in elucidating the relationships between different sets of omics data. In this article, our goal is to identify important relationships between genomic expression and cytokine data from a human immunodeficiency virus vaccine trial. We proposed a flexible partial least squares technique, which incorporates group and subgroup structure in the modelling process. Our new method accounts for both grouping of genetic markers (eg, gene sets) and temporal effects. The method generalises existing sparse modelling techniques in the partial least squares methodology and establishes theoretical connections to variable selection methods for supervised and unsupervised problems. Simulation studies are performed to investigate the performance of our methods over alternative sparse approaches. Our R package sgspls is available at https://github.com/matt‐sutton/sgspls .
    Type of Medium: Online Resource
    ISSN: 0277-6715 , 1097-0258
    URL: Issue
    RVK:
    Language: English
    Publisher: Wiley
    Publication Date: 2018
    detail.hit.zdb_id: 1491221-1
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  • 2
    Online Resource
    Online Resource
    Institute of Mathematical Statistics ; 2019
    In:  Statistics Surveys Vol. 13, No. none ( 2019-1-1)
    In: Statistics Surveys, Institute of Mathematical Statistics, Vol. 13, No. none ( 2019-1-1)
    Type of Medium: Online Resource
    ISSN: 1935-7516
    Language: Unknown
    Publisher: Institute of Mathematical Statistics
    Publication Date: 2019
    detail.hit.zdb_id: 2391400-2
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  • 3
    Online Resource
    Online Resource
    Springer Science and Business Media LLC ; 2022
    In:  BMC Medical Research Methodology Vol. 22, No. 1 ( 2022-12)
    In: BMC Medical Research Methodology, Springer Science and Business Media LLC, Vol. 22, No. 1 ( 2022-12)
    Abstract: Genome-wide association studies (GWAS) have identified genetic variants associated with multiple complex diseases. We can leverage this phenomenon, known as pleiotropy, to integrate multiple data sources in a joint analysis. Often integrating additional information such as gene pathway knowledge can improve statistical efficiency and biological interpretation. In this article, we propose statistical methods which incorporate both gene pathway and pleiotropy knowledge to increase statistical power and identify important risk variants affecting multiple traits. Methods We propose novel feature selection methods for the group variable selection in multi-task regression problem. We develop penalised likelihood methods exploiting different penalties to induce structured sparsity at a gene (or pathway) and SNP level across all studies. We implement an alternating direction method of multipliers (ADMM) algorithm for our penalised regression methods. The performance of our approaches are compared to a subset based meta analysis approach on simulated data sets. A bootstrap sampling strategy is provided to explore the stability of the penalised methods. Results Our methods are applied to identify potential pleiotropy in an application considering the joint analysis of thyroid and breast cancers. The methods were able to detect eleven potential pleiotropic SNPs and six pathways. A simulation study found that our method was able to detect more true signals than a popular competing method while retaining a similar false discovery rate. Conclusion We developed feature selection methods for jointly analysing multiple logistic regression tasks where prior grouping knowledge is available. Our method performed well on both simulation studies and when applied to a real data analysis of multiple cancers.
    Type of Medium: Online Resource
    ISSN: 1471-2288
    Language: English
    Publisher: Springer Science and Business Media LLC
    Publication Date: 2022
    detail.hit.zdb_id: 2041362-2
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  • 4
    Online Resource
    Online Resource
    Informa UK Limited ; 2019
    In:  Journal of Statistical Computation and Simulation Vol. 89, No. 6 ( 2019-04-13), p. 1005-1019
    In: Journal of Statistical Computation and Simulation, Informa UK Limited, Vol. 89, No. 6 ( 2019-04-13), p. 1005-1019
    Type of Medium: Online Resource
    ISSN: 0094-9655 , 1563-5163
    Language: English
    Publisher: Informa UK Limited
    Publication Date: 2019
    detail.hit.zdb_id: 2004311-9
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