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Deep Learning Power Allocation in Massive MIMO
December 10, 2018 ยท Declared Dead ยท ๐ Asilomar Conference on Signals, Systems and Computers
Authors
Luca Sanguinetti, Alessio Zappone, Merouane Debbah
arXiv ID
1812.03640
Category
eess.SP: Signal Processing
Cross-listed
cs.IT,
cs.LG
Citations
124
Venue
Asilomar Conference on Signals, Systems and Computers
Repository
https://github.com/lucasanguinetti/
Last Checked
1 month ago
Abstract
This work advocates the use of deep learning to perform max-min and max-prod power allocation in the downlink of Massive MIMO networks. More precisely, a deep neural network is trained to learn the map between the positions of user equipments (UEs) and the optimal power allocation policies, and then used to predict the power allocation profiles for a new set of UEs' positions. The use of deep learning significantly improves the complexity-performance trade-off of power allocation, compared to traditional optimization-oriented methods. Particularly, the proposed approach does not require the computation of any statistical average, which would be instead necessary by using standard methods, and is able to guarantee near-optimal performance.
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