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ファイル | 記述 | サイズ | フォーマット | |
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ATSIP.2020.19.pdf | 1 MB | Adobe PDF | 見る/開く |
タイトル: | Discreteness and group sparsity aware detection for uplink overloaded MU-MIMO systems |
著者: | Hayakawa, Ryo Nakai-Kasai, Ayano Hayashi, Kazunori ![]() ![]() ![]() |
著者名の別形: | 林, 和則 |
キーワード: | Overloaded MU-MIMO Signal detection Discreteness Group sparsity Convex optimization |
発行日: | 6-Oct-2020 |
出版者: | Cambridge University Press (CUP) |
誌名: | APSIPA Transactions on Signal and Information Processing |
巻: | 9 |
号: | 1 |
論文番号: | e21 |
抄録: | This paper proposes signal detection methods for frequency domain equalization (FDE) based overloaded multiuser multiple input multiple output (MU-MIMO) systems for uplink Internet of things (IoT) environments, where a lot of IoT terminals are served by a base station having less number of antennas than that of IoT terminals. By using the fact that the transmitted signal vector has the discreteness and the group sparsity, we propose a convex discreteness and group sparsity aware (DGS) optimization problem for the signal detection. We provide an optimization algorithm for the DGS optimization on the basis of the alternating direction method of multipliers (ADMM). Moreover, we extend the DGS optimization into weighted DGS (W-DGS) optimization and propose an iterative approach named iterative weighted DGS (IW-DGS), where we iteratively solve the W-DGS optimization problem with the update of the parameters in the objective function. We also discuss the computational complexity of the proposed IW-DGS and show that we can reduce the order of the complexity by using the structure of the channel matrix. Simulation results show that the symbol error rate (SER) performance of the proposed method is close to that of the oracle zero forcing (ZF) method, which perfectly knows the activity of each IoT terminal. |
著作権等: | © The Author(s), 2020 published by Cambridge University Press in association with Asia Pacific Signal and Information Processing Association. This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited. |
URI: | http://hdl.handle.net/2433/293768 |
DOI(出版社版): | 10.1017/atsip.2020.19 |
関連リンク: | https://www.cambridge.org/core/services/aop-cambridge-core/content/view/S2048770320000190 |
出現コレクション: | 学術雑誌掲載論文等 |

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