Özet
This paper compares several neural network algorithms using the digital predistortion (DPD) technique for high-efficiency power amplifiers. The neural networks estimate the coefficients of the memory polynomial digital predistortion technique by constructing an indirect learning architecture. The Doherty power amplifier input and output data extracted using a 100 MHz OFDM signal are used to build the DPD model. As the aim of the study, the memorial polynomial digital predistortion technique with several neural network algorithms is compared to observe linearity and linearizability performances on power amplifiers. An adjacent channel power ratio of-31.23 dB, an error vector magnitude of 5.74%, and a normalized mean square error (NMSE) of-36.46 dB have been obtained through the Long-Short-Term Memory algorithm, superior to its counterparts.
| Orijinal dil | İngilizce |
|---|---|
| Ana bilgisayar yayını başlığı | Proceedings - 2024 20th International Conference on Synthesis, Modeling, Analysis and Simulation Methods and Applications to Circuit Design, SMACD 2024 |
| Yayınlayan | Institute of Electrical and Electronics Engineers Inc. |
| ISBN (Elektronik) | 9798350351927 |
| DOI'lar | |
| Yayın durumu | Yayınlandı - 2024 |
| Etkinlik | 20th International Conference on Synthesis, Modeling, Analysis and Simulation Methods and Applications to Circuit Design, SMACD 2024 - Volos, Greece Süre: 2 Tem 2024 → 5 Tem 2024 |
Yayın serisi
| Adı | Proceedings - 2024 20th International Conference on Synthesis, Modeling, Analysis and Simulation Methods and Applications to Circuit Design, SMACD 2024 |
|---|
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| ???event.eventtypes.event.conference??? | 20th International Conference on Synthesis, Modeling, Analysis and Simulation Methods and Applications to Circuit Design, SMACD 2024 |
|---|---|
| Ülke/Bölge | Greece |
| Şehir | Volos |
| Periyot | 2/07/24 → 5/07/24 |
Bibliyografik not
Publisher Copyright:© 2024 IEEE.
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