Mobile edge computing system task scheduling method based on migration and reinforcement learning
A technology of reinforcement learning and edge computing, applied in neural learning methods, computing, program control design, etc.
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[0062] Attached as follows figure 1 , to further describe the application scheme:
[0063] Aiming at the task scheduling problem of edge computing servers, the present invention proposes a task scheduling method for mobile edge computing systems based on migration and reinforcement learning, which includes the following steps:
[0064] Step 1, establish a multi-agent simulation training environment, construct the reward function r of the environment, which is negatively correlated with the total consumption: r=K·e -C , where K is an adjustable coefficient, which constrains the value range of the reward function between (0, K), and C is calculated according to the integrated delay and energy consumption:
[0065] C=∑ m E. n~π(m) (c m,n )+∑ n∈N′ l n (1)
[0066] Where π(m) is the deployment strategy of the mth server, N′ is the set of users who have not obtained the server, l n is the consumption performed locally by the user. c m,n =λ 1 T m.n +λ 2 E. m,n ,T m.n ...
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