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Machine learning for inference of human demography and biology

  • Gerton Lunter (Organisator*in)

Aktivität: Teilnahme an oder Organisation einer VeranstaltungOrganisation von Konferenz, Workshop, ...

Beschreibung

The emergence of sequencing technologies have made biology into a data-rich science. However, standard statistical inference procedures struggle to process these data, and researchers in statistics and machine learning have developed new methods to extract meaningful patterns for large data sets. Here I will focus on two such methods, particle filters and deep neural networks, and I will show how we have applied these methods to two problems in biology: the inference of human demographic history from whole-genome data, and how predicting recombination hotspots can give us a glimpse of the underlying biology of recombination.
Zeitraum02 Okt. 2017
VeranstaltungstypGastvortrag
OrtÖsterreichAuf Karte anzeigen

Wissenschaftszweige

  • 305 Andere Humanmedizin, Gesundheitswissenschaften
  • 102019 Machine Learning
  • 304 Medizinische Biotechnologie
  • 303 Gesundheitswissenschaften
  • 302 Klinische Medizin
  • 301 Medizinisch-theoretische Wissenschaften, Pharmazie
  • 102 Informatik
  • 106005 Bioinformatik
  • 106007 Biostatistik
  • 304003 Gentechnik
  • 106041 Strukturbiologie
  • 102010 Datenbanksysteme
  • 101018 Statistik
  • 106023 Molekularbiologie
  • 106002 Biochemie
  • 102001 Artificial Intelligence
  • 102015 Informationssysteme
  • 101004 Biomathematik
  • 102004 Bioinformatik

JKU-Schwerpunkte

  • Versorgungsforschung
  • Computation in Informatics and Mathematics
  • Klinische Altersforschung
  • Nano-, Bio- and Polymer-Systems: From Structure to Function
  • MED Allgemein