A Novel Graph-based Computation Offloading Strategy for Workflow Applications in Mobile Edge Computing
Xuejun Li, Tianxiang Chen, Dong Yuan, Jia Xu, Xiao Liu

TL;DR
This paper introduces a new graph-based computation offloading strategy for complex workflow applications in mobile edge computing, improving response time and energy efficiency by handling nonlinear task dependencies.
Contribution
It presents a novel graph-based approach capable of managing complex, nonlinear workflows in MEC, outperforming existing strategies that are limited to simple linear workflows.
Findings
Effective in handling complex workflow structures.
Reduces energy consumption under deadline constraints.
Demonstrates superior performance over existing strategies.
Abstract
With the fast development of mobile edge computing (MEC), there is an increasing demand for running complex applications on the edge. These complex applications can be represented as workflows where task dependencies are explicitly specified. To achieve better Quality of Service (QoS), for instance, faster response time and lower energy consumption, computation offloading is widely used in the MEC environment. However, many existing computation offloading strategies only focus on independent computation tasks but overlook the task dependencies. Meanwhile, most of these strategies are based on search algorithms such as particle swarm optimization (PSO), genetic algorithm (GA) which are often time-consuming and hence not suitable for many delay-sensitive complex applications in MEC. Therefore, a highly efficient graph-based strategy was proposed in our recent work but it can only deal…
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Taxonomy
TopicsIoT and Edge/Fog Computing · Stochastic Gradient Optimization Techniques · Age of Information Optimization
