Matthias Dehmer & Frank Emmert-Streib 
Analysis of Complex Networks [PDF ebook] 
From Biology to Linguistics

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Neue Ansätze zur Analyse komplexer Netzwerke sind Gegenstand dieses Bandes, der mit einer Fülle mathematischer Hintergrundinformationen aufwartet. Mehr interessanten Beiträgen für Fachleute aus der Systembiologie oder der Analyse neuronaler Netze.

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Entropy, Orbits, and Spectra of Graphs (Mowshowitz, Mitsou)
Statistical Mechanics of Complex Networks (Thurner)
A Simple Integrated Approach to Network Complexity and Node Centrality (Bonchev)
Graph Spectra and the Structure of Complex Networks (Estrada)
Random Induced Subgraphs of n-Cubes (Reidys)
Graph Edit Distance – Optimal and Suboptimal Algorithms with Applications (Bunke, Riesen)
Graph Energy (Gutman, Li, Zhang)
Generalized Shortest Path Trees: A Novel Graph Class by Example of Semiotic Networks (Mehler)
Applications of Graph Theory in Chemo- and Bioinformatics (Dimitropoulos, Golovin, John, Krissinel) Structural and Functional Dynamics in Cortical and Neuronal Networks (Kaiser, Simonotto)
Network Mapping of Metabolic Pathways (Cheng, Zelikovsky)
Graph Structure Analysis and Computational Tractability of Scheduling Problems (Sevastyanov, Kononov)
Counting Cubes in Median Graphs and Related Problems (Kovse)
Elementary Elliptic (R, q)-Polycycles (Deza, Sikiric, Shtogrin)
Optimal Dynamic Flows in Networks and Algorithms for Finding Them (Lozovanu, Fonoberova)
Analyzing and Modeling European R&D Collaborations: Challenges and Opportunities from a Large Social Network (Barber, Paier, Scherngell)
Analytic Combinatorics on Random Graphs (Drmota, Gittenberger)

Mengenai Pengarang

Matthias Dehmer studied mathematics at the University of Siegen (Germany) and received his Ph.D. in computer science from the Technical University of Darmstadt (Germany). Currently, he is with the Vienna University of Technology (Austria) in the department of Discrete Mathematics and Geometry. His research interests are Graph Theory, Information Theory, Computational Biology and Machine Learning.
Frank Emmert-Streib studied Physics at the University of Siegen (Germany) and received his Ph.D. in Theoretical Physics form the University of Bremen (Germany). He was postdoctoral research associate at the Stowers Institute for Medical Research (Kansas City, USA) in the Department for Bioinformatics and is currently senior research fellow at the University of Washington (Seattle, USA) in Biostatistics and Genome Sciences. His research interests are in the field of Computational Biology, Biostatistics, Machine Learning and Information Theory and Statistical Learning.

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Bahasa Inggeris ● Format PDF ● Halaman-halaman 462 ● ISBN 9783527627998 ● Saiz fail 6.4 MB ● Penyunting Matthias Dehmer & Frank Emmert-Streib ● Penerbit Wiley-VCH ● Diterbitkan 2009 ● Edisi 1 ● Muat turun 24 bulan ● Mata wang EUR ● ID 2441287 ● Salin perlindungan Adobe DRM
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