Reconfigurable Intelligent Surface Aided Integer Forcing MIMO
- Authors
- Chae, Sung Ho; Jeon, Sang-Woon
- Issue Date
- Aug-2025
- Publisher
- Institute of Electrical and Electronics Engineers Inc.
- Keywords
- Cooperative relaying; integer forcing (IF); multiple-input multiple-output (MIMO); reconfigurable intelligent surface (RIS); successive interference cancellation (SIC)
- Citation
- IEEE Transactions on Wireless Communications, v.24, no.8, pp 1 - 15
- Pages
- 15
- Indexed
- SCIE
SCOPUS
- Journal Title
- IEEE Transactions on Wireless Communications
- Volume
- 24
- Number
- 8
- Start Page
- 1
- End Page
- 15
- URI
- https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/125395
- DOI
- 10.1109/TWC.2025.3552688
- ISSN
- 1536-1276
1558-2248
- Abstract
- This paper studies a cooperative relaying communication scheme that employs a single passive reconfigurable intelligent surface (RIS), utilizing integer forcing (IF) as a multiple-input multiple-output (MIMO) technique. In the case of IF-based transceivers, the transmitter sends independently encoded data streams using the same lattice code, and the receiver decodes integer-linear combinations of codewords instead of decoding each codeword separately. Although the flexible decoding provided by IF improves achievable rates compared to conventional separate decoding, the integer-linear combinations observed at the IF-based receiver must remain unchanged throughout the codeword’s duration, even in the presence of channel variations, to enable the decoding of summed codewords. Motivated by this fact, we introduce a novel strategy tailored for IF that involves adjusting the reflection matrix of the RIS to reduce fluctuations in the resulting end-to-end channel between the transmitter and receiver throughout codeword transmission, which we refer to as channel stabilization. Furthermore, we develop a novel IF-based transceiver scheme called successive cancellation IF (SC-IF), which effectively integrates successive IF (S-IF) sum decoding with minimum mean square error–successive interference cancellation (MMSE–SIC) individual decoding within a unified MIMO framework to achieve improved performance. Simulation results demonstrate that when a large number of reflective elements are employed in the RIS, the proposed channel stabilization scheme significantly outperforms benchmark schemes that aim to individually optimize the reflection matrix for each sub-block, and the proposed SC-IF can achieve a rate comparable to the theoretical upper bound represented by the joint maximal likelihood (ML) receiver. © 2002-2012 IEEE.
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