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Thirty Years of Machine Learning: The Road to Pareto-Optimal Wireless Networks
[article]
2020
arXiv
pre-print
Future wireless networks have a substantial potential in terms of supporting a broad range of complex compelling applications both in military and civilian fields, where the users are able to enjoy high-rate, low-latency, low-cost and reliable information services. Achieving this ambitious goal requires new radio techniques for adaptive learning and intelligent decision making because of the complex heterogeneous nature of the network structures and wireless services. Machine learning (ML)
arXiv:1902.01946v2
fatcat:7bveg6rmjfga5mftdkr3mst2qa