conference-paper

Boosting scalable data analytics with modern programmable networks

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Abstract

Data center networks lie at the core of distributed data analytics frameworks running in large scale environments. Recent research seek to improve the system performance by optimizing the end-host network usage, e.g., optimally use RDMA [2] or zero copy I/O frameworks [5] for distributed data analytics frameworks. Such approaches allow these systems to leverage the high network-bandwidth at end-hosts, however, keep the network itself untouched which does not solve contention and scalability issues.

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Publication details

DOI
10.1145/3211922.3211923
OpenAlex
W2806438613
Document type
conference-paper
Language
EN
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