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NC-OFDM Satellite Communication Based on Compressed Spectrum Sensing
Yong Wang1,2, Hehao Niu1,2, Qingsong Zhao1,2
1College of Electronic Countermeasure, National University of Defence Technology, Hefei 230037, China.
Sensors (Basel, Switzerland)
|May 28, 2022
Summary
This study introduces a non-continuous orthogonal frequency division multiplexing (NC-OFDM) method to boost spectrum efficiency in satellite communications. The proposed approach effectively utilizes spectrum holes, enhancing overall satellite communication performance.
Area of Science:
- Satellite Communications
- Wireless Communication Systems
- Signal Processing
Background:
- The rapid expansion of Low Earth Orbit (LEO) constellations necessitates improved spectrum utilization in satellite communications.
- Current spectrum management techniques face challenges in efficiently accommodating the growing demands of satellite networks.
Purpose of the Study:
- To enhance spectrum utilization efficiency in satellite communications.
- To propose and evaluate a novel Non-Continuous Orthogonal Frequency Division Multiplexing (NC-OFDM) method.
Main Methods:
- Development of NC-OFDM system models for satellite communication.
- Implementation of a sub-carrier allocation method using spectrum sensing to identify and exploit spectrum holes.
- Application of a hybrid genetic particle swarm optimization algorithm for effective channel resource allocation.
Main Results:
- The proposed spectrum sensing and sub-carrier allocation method efficiently identifies available spectrum holes.
- The hybrid optimization algorithm effectively allocates channel resources within the NC-OFDM framework.
- Simulation results demonstrate a significant improvement in spectrum efficiency compared to existing methods.
Conclusions:
- The NC-OFDM method, combined with intelligent resource allocation, offers a viable solution for increasing spectrum efficiency in satellite communications.
- This approach is crucial for supporting the scalability and performance of future LEO satellite constellations.
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