Multivariate Biomarker Discovery : Data Science Methods for Efficient Analysis of High-Dimensional Biomedical Data
Book Details
Format
Hardback or Cased Book
ISBN-10
1316518701
ISBN-13
9781316518700
Publisher
Cambridge University Press
Imprint
Cambridge University Press
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Jun 6th, 2024
Print length
294 Pages
Weight
670 grams
Dimensions
17.60 x 25.10 x 2.40 cms
Product Classification:
Data analysis: generalData science and analysisMedical and health informaticsMedical bioinformaticsEpidemiology & medical statisticsEpidemiology and Medical statisticsProbability & statisticsProbability and statisticsBiology, life sciencesGenetics (non-medical)Computer modelling & simulationComputer modelling and simulation
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This concise book for scientists and students interested in bioinformatics and data science covers all aspects of predictive modeling for biomarker discovery based on high-dimensional data, as well as modern data science methods for identification of parsimonious and robust multivariate biomarkers for medical diagnosis and personalized medicine.
Multivariate biomarker discovery is increasingly important in the realm of biomedical research, and is poised to become a crucial facet of personalized medicine. This will prompt the demand for a myriad of novel biomarkers representing distinct ''omic'' biosignatures, allowing selection and tailoring treatments to the various individual characteristics of a particular patient. This concise and self-contained book covers all aspects of predictive modeling for biomarker discovery based on high-dimensional data, as well as modern data science methods for identification of parsimonious and robust multivariate biomarkers for medical diagnosis, prognosis, and personalized medicine. It provides a detailed description of state-of-the-art methods for parallel multivariate feature selection and supervised learning algorithms for regression and classification, as well as methods for proper validation of multivariate biomarkers and predictive models implementing them. This is an invaluable resource for scientists and students interested in bioinformatics, data science, and related areas.
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