A cost-minimizing ILP for joint service placement and task scheduling with QoS deadlines on a three-tier edge-cloud platform, plus two heuristics that approach optimal in simulations.
Dynamic Service Migration in Mobile Edge Computing Based on Markov Decision Process
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abstract
In mobile edge computing, local edge servers can host cloud-based services, which reduces network overhead and latency but requires service migrations as users move to new locations. It is challenging to make migration decisions optimally because of the uncertainty in such a dynamic cloud environment. In this paper, we formulate the service migration problem as a Markov Decision Process (MDP). Our formulation captures general cost models and provides a mathematical framework to design optimal service migration policies. In order to overcome the complexity associated with computing the optimal policy, we approximate the underlying state space by the distance between the user and service locations. We show that the resulting MDP is exact for uniform one-dimensional user mobility while it provides a close approximation for uniform two-dimensional mobility with a constant additive error. We also propose a new algorithm and a numerical technique for computing the optimal solution which is significantly faster than traditional methods based on standard value or policy iteration. We illustrate the application of our solution in practical scenarios where many theoretical assumptions are relaxed. Our evaluations based on real-world mobility traces of San Francisco taxis show superior performance of the proposed solution compared to baseline solutions.
fields
cs.NI 1years
2019 1verdicts
CONDITIONAL 1representative citing papers
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Meeting QoS of Users in a Edge to Cloud Platform via Optimally Placing Services and Scheduling Tasks
A cost-minimizing ILP for joint service placement and task scheduling with QoS deadlines on a three-tier edge-cloud platform, plus two heuristics that approach optimal in simulations.