Gradient Descent Direction Random Walk MIMO Detection Using Intermediate Search Point

In this paper, multi-input multi-output (MIMO) signal detection with random walk along a gradient descent direction using an intermediate search point is presented. As a low complexity MIMO signal detection schemes, a gradient descent algorithm with Metropolis-Hastings (MH) methods has been proposed...

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Veröffentlicht in:IEICE Transactions on Communications 2023/11/01, Vol.E106.B(11), pp.1192-1199
Hauptverfasser: ITO, Naoki, SANADA, Yukitoshi
Format: Artikel
Sprache:eng
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Zusammenfassung:In this paper, multi-input multi-output (MIMO) signal detection with random walk along a gradient descent direction using an intermediate search point is presented. As a low complexity MIMO signal detection schemes, a gradient descent algorithm with Metropolis-Hastings (MH) methods has been proposed. Random walk along a gradient descent direction speeds up the MH based search using the gradient of a least-squares cost function. However, the gradient vector may be discarded through QAM constellation quantization in some cases. For further performance improvement, this paper proposes an improved search scheme in which the gradient vector is stored for the next search iteration to generate an intermediate search point. The performance of the proposed scheme improves with higher order modulation symbols as compared with that of a conventional scheme. Numerical results obtained through computer simulation show that a bit error rate (BER) performance improves by 5dB at a BER of 10-3 for 64QAM symbols in a 16×16 MIMO system.
ISSN:0916-8516
1745-1345
DOI:10.1587/transcom.2023EBT0002