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Prediction of Complex Traits Using Genomic Data

Gianola, Daniel de los Campos, Gustavo

Chapman & Hall/CRC Biostatistics Series

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Innbundet

Forventes utgitt

Forventes utgitt: 05.01.2026

Leveringstid: 3-10 dager

Handlinger

Beskrivelse

Omtale

This book explains and demonstrates with real and simulated examples how whole-genome information can be used for predicting complex traits, with applications in animal, human, and plant genetics. After giving a brief introduction, the book covers linear models and dimensionality, plus regularized regressions. It then progresses to the genomic best linear unbiased predictor, the Bayesian alphabet, reproducing Kernel Hiblert spaces regressions, penalized neural networks, and re-sampling methods. Lastly, it covers whole genome regression and population stratification.

Detaljer

  • ISBN/Varenr:

    9781482253740

  • Språk:

    , Engelsk

  • Forlag:

    Chapman & Hall/CRC

  • Fagtema:

    Medisin og sykepleie

  • Litteraturtype:

    Faglitteratur

  • Sider:

    350

  • Høyde:

    23.4 cm

  • Bredde:

    15.6 cm