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Statistical Analysis of Graph Structures in Random Variable Networks

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Artikelnr: SK0274898-SE20260527-055838 Kategori: Etikett:

Beskrivning

Beskrivning

This book studies complex systems with elements represented by random variables. Its main goal is to study and compare uncertainty of algorithms of network structure identification with applications to market network analysis. For this, a mathematical model of random variable network is introduced, uncertainty of identification procedure is defined through a risk function, random variables networks with different measures of similarity (dependence) are discussed, and general statistical properties of identification algorithms are studied. The volume also introduces a new class of identification algorithms based on a new measure of similarity and prove its robustness in a large class of distributions, and presents applications to social networks, power transmission grids, telecommunication networks, stock market networks, and brain networks through a theoretical analysis that identifies network structures. Both researchers and graduate students in computer science, mathematics, and optimization will find the applications and techniques presented useful.

Om boken

Om denna bok

Statistical Analysis of Graph Structures in Random Variable Networks av V. A. Kalyagin, A. P. Koldanov, P. A. Koldanov och P. M. Pardalos är en Danskt band bok med 101 sidor på Engelska. Detta är den 1:a upplagan som utgavs 2020 av Springer Nature.

Produktinformation

Kategori
Okänd
Bandtyp
Danskt band
Språk
Engelska
ISBN
9783030602925
Upplaga
1
Utgiven
2020-12-06
Förlag
Springer Nature
Sidantal
101