Power Amplifier Predistortion Using Reduced Sampling Rates in the Forward and Feedback Paths.
Serien Ahmed1, Majid Ahmed1, Souheil Bensmida2
1Department of Electrical Engineering, College of Engineering, American University of Sharjah, Sharjah P.O. Box 26666, United Arab Emirates.
Sensors (Basel, Switzerland)
|June 19, 2024
Summary
This study introduces a novel digital predistortion technique for wireless communication, reducing sampling rates in forward and feedback paths. This method achieves significant sampling rate reductions with minimal performance loss for 5G signals.
Area of Science:
- Electrical Engineering
- Wireless Communication Systems
- Signal Processing
Background:
- Next-generation wireless communication demands higher data rates, leading to increased bandwidth utilization (e.g., 400 MHz in 5G NR).
- Existing digital predistortion techniques face challenges with high sampling rate requirements, impacting efficiency and practicality.
- Developing predistortion methods operating at lower sampling rates is crucial for advanced wireless systems.
Purpose of the Study:
- To present a novel predistortion technique that divides processing between digital and analog domains.
- To reduce the sampling rate requirements for both forward and feedback paths in digital predistortion systems.
- To enable efficient and practical predistortion solutions for high-bandwidth wireless communication.
Main Methods:
- A hybrid predistortion approach combining analog and digital domains was developed.
- The analog domain incorporates a memoryless AM/AM gain function.
- The digital domain utilizes a nonlinear model with memory effects to compensate for impairments.
- The sampling rate reduction was applied concurrently to the forward path's DAC and the feedback path's ADC.
Main Results:
- Experimental validation was performed using 20 MHz and 40 MHz 5G signals.
- A 50% sampling rate reduction was achieved for the 20 MHz signal with minimal linearization degradation.
- A 30% sampling rate reduction was achieved for the 40 MHz signal with minimal linearization degradation.
- The proposed technique effectively relaxes sampling rate requirements without significant performance compromise.
Conclusions:
- The novel hybrid predistortion technique successfully reduces sampling rate requirements in wireless communication systems.
- This approach offers a practical solution for implementing efficient digital predistortion in next-generation wireless standards like 5G.
- The method demonstrates a viable trade-off between sampling rate reduction and linearization performance.
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