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MapReduce

Jay B. Dean; Sanjay Ghemawat · Communications of the ACM · 2008

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MapReduce is a programming model and an associated implementation for processing and generating large datasets that is amenable to a broad variety of real-world tasks. Users specify the computation in terms of a map and a reduce function, and the underlying runtime system automatically parallelizes the computation across large-scale clusters of machines, handles machine failures, and schedules inter-machine communication to make efficient use of the network and disks. Programmers find the system easy to use: more than ten thousand distinct MapReduce programs have been implemented internally at Google over the past four years, and an average of one hundred thousand MapReduce jobs are executed on Google's clusters every day, processing a total of more than twenty petabytes of data per day.

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APA 7

Dean, J. B. & Ghemawat, S. (2008). MapReduce. https://doi.org/10.1145/1327452.1327492

MLA

Dean, Jay B, and Sanjay Ghemawat. "MapReduce." 2008. https://doi.org/10.1145/1327452.1327492.

Chicago

Dean, Jay B. and Sanjay Ghemawat. 2008. "MapReduce.". https://doi.org/10.1145/1327452.1327492.

Harvard

Dean, J. B. and Ghemawat, S. 2008, MapReduce, Communications of the ACM, available at: https://doi.org/10.1145/1327452.1327492 [Accessed 7 Aug. 2026].

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Title
MapReduce
Author / contributors
Jay B. Dean; Sanjay Ghemawat
Publisher
Communications of the ACM
Publication year
2008
Language
English

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