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Large-scale Graph Analysis: System, Algorithm and Optimization

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Large-scale Graph Analysis: System, Algorithm and Optimization Synopsis

This book introduces readers to a workload-aware methodology for large-scale graph algorithm optimization in graph-computing systems, and proposes several optimization techniques that can enable these systems to handle advanced graph algorithms efficiently. More concretely, it proposes a workload-aware cost model to guide the development of high-performance algorithms. On the basis of the cost model, the book subsequently presents a system-level optimization resulting in a partition-aware graph-computing engine, PAGE.

In addition, it presents three efficient and scalable advanced graph algorithms – the subgraph enumeration, cohesive subgraph detection, and graph extraction algorithms. This book offers a valuable reference guide for junior researchers, covering the latest advances in large-scale graph analysis; and for senior researchers, sharing state-of-the-art solutions based on advanced graph algorithms. In addition, all readers will find a workload-aware methodology fordesigning efficient large-scale graph algorithms.

About This Edition

ISBN: 9789811539305
Publication date:
Author: Yingxia Shao, Bin Cui, Lei Chen
Publisher: Springer Verlag, Singapore
Format: Paperback
Pagination: 146 pages
Series: Big Data Management
Genres: Data mining
Expert systems / knowledge-based systems
Mathematical physics
Complex analysis, complex variables
Information architecture
Computer and information technologies hardware: Maintenance and repairs

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