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B01=Nataa Prulj
B01=Natasa Przulj
Category1=Non-Fiction
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Category=PS
Category=PSAK
Category=UYM
COP=United Kingdom
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Language_English
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Analyzing Network Data in Biology and Medicine: An Interdisciplinary Textbook for Biological, Medical and Computational Scientists

English

The increased and widespread availability of large network data resources in recent years has resulted in a growing need for effective methods for their analysis. The challenge is to detect patterns that provide a better understanding of the data. However, this is not a straightforward task because of the size of the data sets and the computer power required for the analysis. The solution is to devise methods for approximately answering the questions posed, and these methods will vary depending on the data sets under scrutiny. This cutting-edge text introduces biological concepts and biotechnologies producing the data, graph and network theory, cluster analysis and machine learning, before discussing the thought processes and creativity involved in the analysis of large-scale biological and medical data sets, using a wide range of real-life examples. Bringing together leading experts, this text provides an ideal introduction to and insight into the interdisciplinary field of network data analysis in biomedicine. See more
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Age Group_Uncategorizedautomatic-updateB01=Nataa PruljB01=Natasa PrzuljCategory1=Non-FictionCategory=GPHCategory=PSCategory=PSAKCategory=UYMCOP=United KingdomDelivery_Delivery within 10-20 working daysLanguage_EnglishPA=In stockPrice_€50 to €100PS=Activesoftlaunch
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Product Details
  • Weight: 1280g
  • Dimensions: 175 x 247mm
  • Publication Date: 28 Mar 2019
  • Publisher: Cambridge University Press
  • Publication City/Country: United Kingdom
  • Language: English
  • ISBN13: 9781108432238

About

Nataa Prulj is Professor of Biomedical Data Science at University College London and an ICREA Research Professor at Barcelona Supercomputing Center. She has been an elected academician of The Academy of Europe Academia Europaea since 2017 and is a Fellow of the British Computer Society (BCS). She is recognized for designing methods to mine large real-world molecular network datasets and for extending and using machine learning methods for the integration of heterogeneous biomedical and molecular data applied to advancing biological and medical knowledge. She received two prestigious European Research Council (ERC) research grants Starting (201217) and Consolidator (201823) as well as USA National Science Foundation (NSF) grants among others. She is a recipient of the BCS Roger Needham Award for 2014.

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