Models, Algorithms, and Technologies for Network Analysis: NET 2016, Nizhny Novgorod, Russia, May 2016: Springer Proceedings in Mathematics & Statistics, cartea 197
Editat de Valery A. Kalyagin, Alexey I. Nikolaev, Panos M. Pardalos, Oleg A. Prokopyeven Limba Engleză Paperback – 2 aug 2018
Chapters in this book cover the following topics:
- Linear max min fairness
- Heuristic approaches for high-quality solutions
- Efficient approaches for complex multi-criteria optimization problems
- Comparison of heuristic algorithms
- New heuristic iterative local search
- Power in network structures
- Clustering nodes in random graphs
- Power transmission grid structure
- Network decomposition problems
- Homogeneity hypothesis testing
- Network analysis of international migration
- Social networks with node attributes
- Testing hypothesis on degree distribution in the market graphs
- Machine learning applications to human brain network studies
Toate formatele și edițiile | Preț | Express |
---|---|---|
Paperback (1) | 632.26 lei 43-57 zile | |
Springer International Publishing – 2 aug 2018 | 632.26 lei 43-57 zile | |
Hardback (1) | 638.38 lei 43-57 zile | |
Springer International Publishing – 26 iun 2017 | 638.38 lei 43-57 zile |
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Specificații
ISBN-13: 9783319860121
ISBN-10: 3319860127
Ilustrații: XIII, 277 p. 57 illus.
Dimensiuni: 155 x 235 mm
Greutate: 0.41 kg
Ediția:Softcover reprint of the original 1st ed. 2017
Editura: Springer International Publishing
Colecția Springer
Seria Springer Proceedings in Mathematics & Statistics
Locul publicării:Cham, Switzerland
ISBN-10: 3319860127
Ilustrații: XIII, 277 p. 57 illus.
Dimensiuni: 155 x 235 mm
Greutate: 0.41 kg
Ediția:Softcover reprint of the original 1st ed. 2017
Editura: Springer International Publishing
Colecția Springer
Seria Springer Proceedings in Mathematics & Statistics
Locul publicării:Cham, Switzerland
Cuprins
Linear Max Min Fairness in Multi-commodity Flow Networks (Hamoud Bin Obaid, Theodore B. Trafalis).- Heuristic for Maximizing Grouping Efficiency in the Cell Formation Problem (Ilya Bychkov, Mikhail Batsyn, Panos M. Pardalos).- Efficient Methods of Multicriterial Optimization Based on the Intensive Use of Search Information (Victor Gergel, Evgeny Kozinov).- Comparison of two heuristic algorithms for a location and design problem (Alexander Gnusarev).- A Class of Smooth Modification of Space-Filling Curves for Global Optimization Problems (Alexey Goryachih).- Iterative Local Search Heuristic for Truck and Trailer Routing Problem (Ivan S. Grechikhin).- Power in network structures (Fuad Aleskerov, Natalia Meshcheryakova, Sergey Shvydun).- Do logarithmic proximity measures outperform plain ones in graph clustering? (Vladimir Ivashkin, Pavel Chebotarev).- Analysis of Russian Power Transmission Grid Structure: Small World Phenomena Detection (Sergey Makrushin).- A new approach to network decomposition problems (Alexander Rubchinsky).- Homogeneity hypothesis testing for degree distribution in the market graph (Semenov D.P., Koldanov P.A.).- Network Analysis of International Migration (Fuad Aleskerov, Natalia Meshcheryakova, Anna Rezyapova, Sergey Shvydun).- Overlapping community detection in social networks with node attributes by neighborhood influence (Vladislav Chesnokov).- Testing hypothesis on degree distribution in the market graph (Koldanov P.A., Larushina J.D.).- Application of network analysis for FMCG distribution channels (Nadezda Kolesnik, Valentina Kuskova, Olga Tretyak).- Machine learning application to human brain network studies: a kernel approach (Anvar Kurmukov, Yulia Dodonova, Leonid Zhukov).- Co-author Recommender System (Ilya Makarov, Oleg Bulanov, Leonid Zhukov).- Network Studies in Russia: From Articles to the Structure of a Research Community (Daria Maltseva, Ilia Karpov).
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Textul de pe ultima copertă
This valuable source for graduate students and researchers provides a comprehensive introduction to current theories and applications in optimization methods and network models. Contributions to this book are focused on new efficient algorithms and rigorous mathematical theories, which can be used to optimize and analyze mathematical graph structures with massive size and high density induced by natural or artificial complex networks. Applications to social networks, power transmission grids, telecommunication networks, stock market networks, and human brain networks are presented.
Chapters in this book cover the following topics:
- Linear max min fairness
- Heuristic approaches for high-quality solutions
- Efficient approaches for complex multi-criteria optimization problems
- Comparison of heuristic algorithms
- New heuristic iterative local search
- Power in network structures
- Clustering nodes inrandom graphs
- Power transmission grid structure
- Network decomposition problems
- Homogeneity hypothesis testing
- Network analysis of international migration
- Social networks with node attributes
- Testing hypothesis on degree distribution in the market graphs
- Machine learning applications to human brain network studies
Caracteristici
Introduces current theories and applications in optimization methods and network models Contains new efficient algorithms and rigorous mathematical theories Features applications to social networks, power transmission grids, telecommunication networks, stock market networks, and human brain networks Includes supplementary material: sn.pub/extras