Modified Active Constellation Extension Algorithm for PAPR Reduction in OFDM Systems

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OriginalspracheEnglisch
Titel des Sammelwerks2020 Wireless Telecommunications Symposium
UntertitelWashington, DC, USA, April 22-24, 2020
ISBN (elektronisch)9781728146959
PublikationsstatusVeröffentlicht - 2020
Veranstaltung19th Annual Wireless Telecommunications Symposium, WTS 2020 - Virtual, Washington, USA / Vereinigte Staaten
Dauer: 22 Apr. 202024 Apr. 2020

Publikationsreihe

NameWireless Telecommunications Symposium
Band2020-April
ISSN (Print)1934-5070

Abstract

Communication systems based in Orthogonal Frequency Division Multiplexing (OFDM) technology are very popular due to their robustness against inter-symbol interference (ISI) and their efficient use of the spectrum. Nevertheless, one of the major drawbacks of OFDM is its high peak-to-average power ratio (PAPR), which is part of its multicarrier nature. A high PAPR could drive the high-power amplifier (HPA) in its nonlinear region, preventing thus the receiver from recovering the conveyed information correctly. To avoid this, a PAPR reduction algorithm is essential for such systems. Therefore, in this paper we introduce the modified active constellation extension (mACE) algorithm. The mACE capability to reduce the PAPR is demonstrated through simulation and compared with the state-of-the-art smart gradient-project (SGP) method. It is shown that mACE outperforms the SGP method. For instance, in systems with QPSK modulation, mACE reduces up to 0.5 dB more PAPR than SGP, and up to 0.2 dB in systems with 16-QAM. These results are achieved with less computational complexity. Hence, mACE achieves an appropriate trade-off between PAPR reduction and system resources, which makes it a viable option in real time OFDM systems.

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Modified Active Constellation Extension Algorithm for PAPR Reduction in OFDM Systems. / Samayoa, Y.; Ostermann, J.
2020 Wireless Telecommunications Symposium : Washington, DC, USA, April 22-24, 2020. 2020. 9198714 (Wireless Telecommunications Symposium; Band 2020-April).

Publikation: Beitrag in Buch/Bericht/Sammelwerk/KonferenzbandAufsatz in KonferenzbandForschungPeer-Review

Samayoa, Y & Ostermann, J 2020, Modified Active Constellation Extension Algorithm for PAPR Reduction in OFDM Systems. in 2020 Wireless Telecommunications Symposium : Washington, DC, USA, April 22-24, 2020., 9198714, Wireless Telecommunications Symposium, Bd. 2020-April, 19th Annual Wireless Telecommunications Symposium, WTS 2020, Virtual, Washington, USA / Vereinigte Staaten, 22 Apr. 2020. https://doi.org/10.1109/WTS48268.2020.9198714
Samayoa, Y., & Ostermann, J. (2020). Modified Active Constellation Extension Algorithm for PAPR Reduction in OFDM Systems. In 2020 Wireless Telecommunications Symposium : Washington, DC, USA, April 22-24, 2020 Artikel 9198714 (Wireless Telecommunications Symposium; Band 2020-April). https://doi.org/10.1109/WTS48268.2020.9198714
Samayoa Y, Ostermann J. Modified Active Constellation Extension Algorithm for PAPR Reduction in OFDM Systems. in 2020 Wireless Telecommunications Symposium : Washington, DC, USA, April 22-24, 2020. 2020. 9198714. (Wireless Telecommunications Symposium). doi: 10.1109/WTS48268.2020.9198714
Samayoa, Y. ; Ostermann, J. / Modified Active Constellation Extension Algorithm for PAPR Reduction in OFDM Systems. 2020 Wireless Telecommunications Symposium : Washington, DC, USA, April 22-24, 2020. 2020. (Wireless Telecommunications Symposium).
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AB - Communication systems based in Orthogonal Frequency Division Multiplexing (OFDM) technology are very popular due to their robustness against inter-symbol interference (ISI) and their efficient use of the spectrum. Nevertheless, one of the major drawbacks of OFDM is its high peak-to-average power ratio (PAPR), which is part of its multicarrier nature. A high PAPR could drive the high-power amplifier (HPA) in its nonlinear region, preventing thus the receiver from recovering the conveyed information correctly. To avoid this, a PAPR reduction algorithm is essential for such systems. Therefore, in this paper we introduce the modified active constellation extension (mACE) algorithm. The mACE capability to reduce the PAPR is demonstrated through simulation and compared with the state-of-the-art smart gradient-project (SGP) method. It is shown that mACE outperforms the SGP method. For instance, in systems with QPSK modulation, mACE reduces up to 0.5 dB more PAPR than SGP, and up to 0.2 dB in systems with 16-QAM. These results are achieved with less computational complexity. Hence, mACE achieves an appropriate trade-off between PAPR reduction and system resources, which makes it a viable option in real time OFDM systems.

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