conference-paper
Boosting scalable data analytics with modern programmable networks
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- Citations
- 9
- References
- 12
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- 0
Paper overview
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
- Last metadata update
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