Machine Learning for Microbial Phenotype Prediction

Author:   Roman Feldbauer
Publisher:   Springer Fachmedien Wiesbaden
Edition:   1st ed. 2016
ISBN:  

9783658143183


Pages:   110
Publication Date:   24 June 2016
Format:   Paperback
Availability:   Manufactured on demand   Availability explained
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Machine Learning for Microbial Phenotype Prediction


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Overview

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 generated in large numbers in current metagenomic studies. Unraveling relationships between a living organism's genetic information and its observable traits is a central biological problem. Phenotype prediction facilitated by machine learning techniques will be a major step forward to creating biological knowledge from big data.

Full Product Details

Author:   Roman Feldbauer
Publisher:   Springer Fachmedien Wiesbaden
Imprint:   Springer Spektrum
Edition:   1st ed. 2016
Dimensions:   Width: 14.80cm , Height: 0.70cm , Length: 21.00cm
Weight:   1.707kg
ISBN:  

9783658143183


ISBN 10:   3658143185
Pages:   110
Publication Date:   24 June 2016
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Paperback
Publisher's Status:   Active
Availability:   Manufactured on demand   Availability explained
We will order this item for you from a manufactured on demand supplier.

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Roman Feldbauer is currently employed at the Austrian Research Institute for Artificial Intelligence (OFAI) and PhD student at the University of Vienna. His research interests are machine learning, data science, bioinformatics, comparative genomics and neuroscience. In one of his current projects he investigates large biological databases in regard to the „curse of dimensionality“.

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