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Titlebook: Distributed Graph Analytics; Programming, Languag Unnikrishnan Cheramangalath,Rupesh Nasre,Y. N. Sri Book 2020 Springer Nature Switzerland

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楼主: ABS
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: A Domain Specific Language for Graph Analytics,The domain-specific language . is presented in this chapter. The data types and statements of . that support easy programming of graph analytics applications are described. To drive home the point that . programs can be very efficient, code generation mechanisms used in the . compiler are delineated with examples.
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https://doi.org/10.1057/9780230270688 like traversals, shortest paths, etc., more specialized algorithms such as betweenness centrality, page rank, etc. follow. The chapter ends with a focused discussion of applications of graph analytics in different domains such as graph mining and graph databases.
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https://doi.org/10.1057/9780230270688dels of execution that are used in graph analytics, such as BSP, Map-Reduce, asynchronous execution, GAS, Inspector-Executor, and Advance-Filter-Compute. It also provides a glimpse of different existing frameworks on multi-core CPUs, GPUs, and distributed systems.
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Graph Algorithms and Applications, like traversals, shortest paths, etc., more specialized algorithms such as betweenness centrality, page rank, etc. follow. The chapter ends with a focused discussion of applications of graph analytics in different domains such as graph mining and graph databases.
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Dynamic Graph Algorithms,d deletion of edges and vertices, and the query for property values relevant to the algorithm. The efficiency of a dynamic algorithm depends on the data structure used to implement it. This chapter provides a glimpse into this exciting area in graph analytics.
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