Delay Alignment Modulation: Manipulating Channel Delay Spread for Efficient Single- and Multi-Carrier Communication
Haiquan Lu, Yong Zeng

TL;DR
This paper introduces a flexible delay alignment modulation (DAM) framework that manipulates channel delay spread for efficient single- and multi-carrier communication, especially in high-frequency, multi-path channels, enhancing spectral efficiency and reducing PAPR.
Contribution
It proposes a generic DAM technique to control channel delay spread via spatial-delay processing, extending perfect delay alignment to more practical scenarios, and introduces DAM-OFDM with joint beamforming optimization.
Findings
DAM can significantly reduce channel delay spread.
DAM-OFDM outperforms conventional OFDM in spectral efficiency, BER, and PAPR.
The closed-form solution simplifies implementation of DAM-OFDM.
Abstract
The evolution of mobile communication networks has always been accompanied by the advancement of ISI mitigation techniques, from equalization in 2G, spread spectrum and RAKE receiver in 3G, to OFDM in 4G and 5G. Looking forward towards 6G, by exploiting the high spatial resolution brought by large antenna arrays and the multi-path sparsity of mmWave and Terahertz channels, a novel ISI mitigation technique termed delay alignment modulation (DAM) was recently proposed. However, existing works only consider the single-carrier perfect DAM, which is feasible only when the number of BS antennas is no smaller than that of channel paths, so that all multi-path signal components arrive at the receiver simultaneously and constructively. This imposes stringent requirements on the number of BS antennas and multi-path sparsity. In this paper, we propose a generic DAM technique to manipulate the…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Millimeter-Wave Propagation and Modeling · PAPR reduction in OFDM
