Graph Sampling
Autor Li-Chun Zhangen Limba Engleză Hardback – 27 dec 2021
Graph sampling provides a statistical approach to study real graphs from either of these perspectives. It is based on exploring the variation over all possible sample graphs (or subgraphs) which can be taken from the given population graph, by means of the relevant known sampling probabilities. The resulting design-based inference is valid whatever the unknown properties of the given real graphs.
- One-of-a-kind treatise of multidisciplinary topics relevant to statistics, mathematics and data science.
- Probabilistic treatment of breadth-first and depth-first non-exhaustive search algorithms in graphs.
- Presenting cutting-edge theory and methods based on latest research.
- Pathfinding for future research on sampling from real graphs.
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Specificații
ISBN-13: 9781032067087
ISBN-10: 103206708X
Pagini: 138
Ilustrații: 21 Tables, black and white; 37 Line drawings, black and white; 37 Illustrations, black and white
Dimensiuni: 138 x 216 x 15 mm
Greutate: 0.27 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
ISBN-10: 103206708X
Pagini: 138
Ilustrații: 21 Tables, black and white; 37 Line drawings, black and white; 37 Illustrations, black and white
Dimensiuni: 138 x 216 x 15 mm
Greutate: 0.27 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Cuprins
1. General introduction
2. Bipartite incidence graph sampling and weighting
3. Strategy BIGS-IWE
4. Adaptive cluster sampling
5. Snowball sampling
6. Targeted random walk sampling
2. Bipartite incidence graph sampling and weighting
3. Strategy BIGS-IWE
4. Adaptive cluster sampling
5. Snowball sampling
6. Targeted random walk sampling
Notă biografică
Li-Chun Zhang is Professor of Social Statistics at the University of Southampton, Senior Researcher at Statistics Norway, and Professor of Official Statistics at the University of Oslo. He has researched and published on topics such as finite population sampling design and coordination, graph sampling, machine learning, sample survey estimation, non-response, measurement errors, small area estimation, index number calculations, editing and imputation, register-based statistics, population size estimation, statistical matching, record linkage.
Descriere
Graph Sampling can primarily be used as a resource for researchers working with sampling or graph problems, and as the basis of an advanced course for post-graduate students in statistics, mathematics and data science.