Journal of Jilin University(Engineering and Technology Edition) ›› 2025, Vol. 55 ›› Issue (1): 347-354.doi: 10.13229/j.cnki.jdxbgxb.20230206

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Performance analysis of multi-tag ambient backscatter assists non-orthogonal multiple access system

Hai-yan HUANG1(),Ning ZHANG1,Lin-lin LIANG2,Chun-li WANG1,Xue-jun ZHANG1   

  1. 1.School of Electronic and Information Engineering,Lanzhou Jiaotong University,Lanzhou 730070,China
    2.School of Cyber Engineering,Xidian University,Xi’an 710071,China
  • Received:2023-03-08 Online:2025-01-01 Published:2025-03-28

Abstract:

In this paper, we consider a communication system combining multi-tags ambient backscatter with non-orthogonal multiple access technology. First, on the basis of multi-tags, we propose an optimal tag selection scheme in which the best tag is selected for transmission among M tags placed between the base station and the far user, to analyze the effect of M tags on the far user outage performance. Also, the difference in the near user outage performance produced by using ideal and non-ideal successive interference cancellation is analyzed at the near user side. Then, exact and asymptotic outage probabilities and throughput expressions are derived for users, as well as it is proved that full diversity orders are available for the far and near users. Finally, the correctness of the theoretical analysis is verified by simulation, and the effects of key parameters such as the number of tags, residual interference coefficient of non-ideal SIC and target rate on user performance are obtained. When the number of tags M=5, the signal-to-noise ratio γ=-28?dB, under the same conditions with other parameters fixed, the outage performance of far users is improved by about 10% over single tag.

Key words: communication technology, ambient backscatter, multi-tags, non-orthogonal multiple access, successive interference cancellation

CLC Number: 

  • TN925

Fig.1

System model of ambient Backscatter communication aided NOMA system with multi-tag"

Fig.2

Outage probability of near user UN"

Fig.3

Outage probability of far user UF"

Fig.4

Throughput with different rate"

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