A Hybrid Spatial Adaptive Modulation and Frequency Stochastic Approach for MU-MIMO-OFDM Systems in the Context of Underlay Cognitive Radios

Q3 Computer Science
Rym Labdaoui, K. Ghanem, F. Y. Ettoumi
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引用次数: 0

Abstract

In this paper, low complexity rate and power optimization schemes operating in the spatial and frequency domains are proposed in a cognitive radio (CR) setting involving multi-user multiple-input-multiple-output-orthogonal frequency division multiplexing (MU-MIMO-OFDM). Under the assumption of a perfect secondary channel state information (CSI) at the receiver, the presented architectures encompass two main stages. In the first one, spatial power waterfilling-like method is performed per each MIMO subchannel pertaining to each subcarrier of each secondary user (SU). The resulting allocated power per each eigen-channel is considered as the power budget in the second stage. In this latter, stochastic algorithm-based approach wherein the transmit parameters per each subcarrier of each SU are adapted such that to maximize the achievable sum-rate capacity of the SUs. Three different schemes are introduced in this work. First, the derivation of the continuous rate MU-MIMO-OFDM-CR version, referred to as C-MU-MIMO-OFDM-CR is presented. Obviously, this proposition is theoretical and is taken as a benchmark for the two remaining counterparts. The second proposition we called discrete-rate MU-MIMO-OFDM-CR, and briefly designated as D-MU-MIMO-OFDM-CR which is to round the provided allocated rate. Finally, the third modified solution, denoted as P-D-MU-MIMO-OFDM-CR proceeds in a similar way as the D-MU-MIMO-OFDM-CR alternative, but superimposes the non/over-used amount of power to the power budget in next iteration. The simulation results show that, compared to the discrete rate D-MU-MIMO-OFDM-CR solution, the P-D-MU-MIMO-OFDM-CR approach exhibits an approximate power gain of 1 dB when the SNR level is low, and of 5 dB at high SNR range.
底层认知无线电环境下MU-MIMO-OFDM系统的混合空间自适应调制和频率随机方法
本文在多用户多输入多输出正交频分复用(MU-MIMO-OFDM)的认知无线电(CR)环境中,提出了运行在空间和频域的低复杂度和功率优化方案。在假设接收端有完美的辅助信道状态信息(CSI)的情况下,所提出的体系结构包括两个主要阶段。在第一种方法中,对属于每个辅助用户(SU)的每个子载波的每个MIMO子信道执行类似空间功率注水的方法。将每个特征信道分配的功率作为第二阶段的功率预算。在后者中,基于随机算法的方法,其中每个SU的每个子载波的传输参数被调整,以便最大化SU的可实现和速率容量。本文介绍了三种不同的方案。首先,推导了连续速率MU-MIMO-OFDM-CR版本,简称C-MU-MIMO-OFDM-CR。显然,这个命题是理论性的,并被作为其他两个命题的基准。第二个命题我们称之为离散速率MU-MIMO-OFDM-CR,并简单地指定为D-MU-MIMO-OFDM-CR,它是对提供的分配速率进行四舍五入。最后,第三种修改方案,表示为P-D-MU-MIMO-OFDM-CR,以与D-MU-MIMO-OFDM-CR替代方案类似的方式进行,但将未使用/过度使用的功率量叠加到下一次迭代的功率预算中。仿真结果表明,与离散速率的D-MU-MIMO-OFDM-CR方案相比,P-D-MU-MIMO-OFDM-CR方案在信噪比较低时的功率增益约为1 dB,在高信噪比范围内的功率增益约为5 dB。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Periodica polytechnica Electrical engineering and computer science
Periodica polytechnica Electrical engineering and computer science Engineering-Electrical and Electronic Engineering
CiteScore
2.60
自引率
0.00%
发文量
36
期刊介绍: The main scope of the journal is to publish original research articles in the wide field of electrical engineering and informatics fitting into one of the following five Sections of the Journal: (i) Communication systems, networks and technology, (ii) Computer science and information theory, (iii) Control, signal processing and signal analysis, medical applications, (iv) Components, Microelectronics and Material Sciences, (v) Power engineering and mechatronics, (vi) Mobile Software, Internet of Things and Wearable Devices, (vii) Solid-state lighting and (viii) Vehicular Technology (land, airborne, and maritime mobile services; automotive, radar systems; antennas and radio wave propagation).
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