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Model-free control for distributed stream data processing using deep reinforcement learning

Model-free control for distributed stream data processing using deep reinforcement learning

In this paper, we focus on general-purpose Distributed Stream Data Processing Systems (DSDPSs) , which deal with processing of unbounded streams of continuous data at scale distributedly in real or near-real time. A fundamental problem in a DSDPS is the scheduling problem (i.e., assigning workload to workers/machines) with the objective …