Latency-aware elastic scaling for distributed data stream processing systems

Thomas Heinze, Zbigniew Jerzak, Gregor Hackenbroich, Christof W. Fetzer · 2014

Elastic scaling allows a data stream processing system to react to a dynamically changing query or event workload by automatically scaling in or out. Thereby, both unpredictable load peaks as well as underload situations can be handled. However, each scaling decision comes with a latency penalty due to the required operator movements. Therefore, in practice an elastic system might be able to improve the system utilization, however it is not able to provide latency guarantees defined by a service level agreement (SLA).

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