Deep Reinforcement Learning for User Association in Heterogeneous Networks with Dual Connectivity
2021 IEEE Wireless Communications and Networking Conference (WCNC)(2021)
Abstract
The dual connectivity is emerging as a promising solution to boost capacity in heterogeneous networks. However, it is challenging to obtain an optimal user association in heterogeneous networks with dual connectivity, due to its non-convex and combinatorial nature. In this paper, we propose a user association scheme based on deep reinforcement learning to maximize the overall network utility, whic...
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Key words
Base stations,Simulation,Scalability,Conferences,Reinforcement learning,Markov processes,Throughput
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