Machine Learning for Microbial Phenotype Prediction

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This thesis presents a scalable, generic methodology for microbial phenotype prediction based on supervised machine learning, several models for biological and ecological traits of high relevance, and the deployment in metagenomic datasets. The results suggest that the presented prediction tool can be used to automatically annotate phenotypes in near-complete microbial genome sequences, as generat...
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This thesis presents a scalable, generic methodology for microbial phenotype prediction based on supervised machine learning, several models for biological and ecological traits of high relevance, and the deployment in metagenomic datasets. The results suggest that the presented prediction tool can be used to automatically annotate phenotypes in near-complete microbial genome sequences, as generat...
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  • Formats: pdf
  • ISBN: 9783658143190
  • Publication Date: 15 Jun 2016
  • Publisher: Springer Fachmedien Wiesbaden
  • Product language: English
  • Drm Setting: DRM