Construction of Hopped-Sparse Code Multiple Access Codebooks Based on Chaotic Bernoulli Frequency-Hopping Sequence
Abstract
:1. Introduction
2. Problem Description and Related Work
2.1. Problem Descriptions of Traditional SCMA
2.2. Related Work
3. The Integrated Design of the FH Sequence and SCMA Codebooks
3.1. Requirements of FH-SCMA Codebook Design
- Challenge 1: To achieve the (near) optimal MPA performance at the SCMA receiver, the sparsity of the factor graph matrix of the proposed FH-SCMA codebooks should be satisfied.
- Challenge 2: To ensure the security of the FH-SCMA codebooks, the FH sequence and FH-SCMA codebook should have a sufficiently long period and good randomness.
- Challenge 3: The proposed FH-SCMA codebooks should avoid additional collisions of subcarriers because it could result in the deterioration of the MPA performance at the SCMA receiver.
3.2. Construction Algorithm of FH-SCMA Codebooks
- The continuous interval is divided into p non-overlapping sections,
- The algorithm mapping the analog sequence to the p-ary sequence is shown as
4. A Case Study: An Example of FH-SCMA Codebooks and Their Properties
- Test 1: Functional testing
- Test 2: Sparsity and uniformity testings of the FH-SCMA codebooks
5. The BER Performance of the Proposed FH-SCMA Codebooks
6. Conclusions and Discussions
- The proposed FH-SCMA codebooks attain a long period and good randomness/ uniformity, since the hopped-SCMA codebooks are controlled by the chaotic FH sequence based on the Bernoulli mapping function. The usage distributions of various SC-combinations obtain the small value of standard deviations. The active sub-carriers are hopped over a given RB group, which enhances the spectral efficiency.
- The sparsity of the proposed FH-SCMA codebooks is maintained perfectly so that the classic MPA multi-user detection can be directly applied to the FH-SCMA receiver without any adjustment. This feature guarantees that FH-SCMA codebooks attain favorable performance with low complexity.
- In aid of the FH technique, the FH-SCMA codebooks (system) can efficiently combat the strong jamming attack (25% SCs and 50% TIs jammed), and the BER performance achieves an acceptable level of compared to other SCMA systems, which is more suitable for the massive user access under the severe electromagnetic environment.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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The Combinations of SCs | The Usage Number of SC-Combinations | |||
---|---|---|---|---|
#1 UE | #3 UE | #6 UE | ||
340 | 349 | 338 | ||
338 | 314 | 335 | ||
335 | 340 | 344 | ||
324 | 338 | 349 | ||
329 | 335 | 314 | ||
334 | 324 | 320 | ||
Total | 2000 | 2000 | 2000 | |
Standard deviations | 5.38 | 11.36 | 12.49 |
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Zhao, P.; Xu, Z.; Zeng, Q. Construction of Hopped-Sparse Code Multiple Access Codebooks Based on Chaotic Bernoulli Frequency-Hopping Sequence. Electronics 2025, 14, 1895. https://doi.org/10.3390/electronics14091895
Zhao P, Xu Z, Zeng Q. Construction of Hopped-Sparse Code Multiple Access Codebooks Based on Chaotic Bernoulli Frequency-Hopping Sequence. Electronics. 2025; 14(9):1895. https://doi.org/10.3390/electronics14091895
Chicago/Turabian StyleZhao, Peiyi, Zhimin Xu, and Qi Zeng. 2025. "Construction of Hopped-Sparse Code Multiple Access Codebooks Based on Chaotic Bernoulli Frequency-Hopping Sequence" Electronics 14, no. 9: 1895. https://doi.org/10.3390/electronics14091895
APA StyleZhao, P., Xu, Z., & Zeng, Q. (2025). Construction of Hopped-Sparse Code Multiple Access Codebooks Based on Chaotic Bernoulli Frequency-Hopping Sequence. Electronics, 14(9), 1895. https://doi.org/10.3390/electronics14091895