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Matthias (Hrsg.) Dehmer

Big Data of Complex Networks

Ebook (EPUB Format)

Big Data of Complex Networks presents and explains the methods from the study of big data that can be used in analysing massive structural data sets, including both very large networks and sets of graphs. As well as applying statistical analysis techniques like sampling and bootstrapping in an interdisciplinary manner to produce novel techniques for analyzing massive amounts of data, this book also explores the possibilities offered by the special aspects such as computer memory in investigating large sets of complex networks.Intended for computer scientists, statisticians and mathematicians interested in the big data and networks, Big Data o… Mehr

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Produktdetails


Weitere Autoren: Emmert-Streib, Frank (Hrsg.) / Pickl, Stefan (Hrsg.) / Holzinger, Andreas (Hrsg.)
  • ISBN: 978-1-315-35359-3
  • EAN: 9781315353593
  • Produktnummer: 20563997
  • Verlag: Taylor & Francis Ltd.
  • Sprache: Englisch
  • Erscheinungsjahr: 2016
  • Seitenangabe: 332 S.
  • Plattform: EPUB
  • Masse: 13'085 KB
  • Abbildungen: 17 line equations; 33 total equations, 110 schwarz-weiße Abbildungen, 23 schwarz-weiße Tabellen

Über den Autor


Matthias Dehmer studied mathematics at the University of Siegen (Germany) and received his PhD in computer science from the Technical University of Darmstadt (Germany). Afterwards, he was a research fellow at Vienna BioCenter (Austria), Vienna University of Technology, and University of Coimbra (Coimbra). He obtained his habilitation in applied discrete mathematics from the Vienna University of Technology. Currently, he is Professor at UMIT - The Health and Life Sciences University (Austria) and also holds a position at the Universit¿at der Bundeswehr M¿unchen. His research interests are in applied mathematics, bioinformatics, systems biology, graph theory, complexity, and information theory. He has written over 175 publications in his research areas.Frank Emmert-Streib studied physics at the University of Siegen, Germany, gaining his PhD in theoretical physics from the University of Bremen. He was a postdoctoral research associate at the Stowers Institute for Medical Research, Kansas City, USA, and a senior fellow at the University of Washington, Seattle, USA. Currently, he is a lecturer/assistant professor at the Queen's University Belfast, UK, at the Center for Cancer Research and Cell Biology, heading the Computational Biology and Machine Learning Lab. His research interests are in the field of computational biology, machine learning, and biostatistics in the development and application of methods from statistics and machine learning for the analysis of high-throughput data from genomics and genetics experiments.

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