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Design and Performance Evaluation of SSD (Simultaneous Single Band Duplex) System with HPA Nonlinearity

HPA 비선형 특성을 고려한 SSD(Simultaneous Single Band Duplex) 시스템의 설계와 성능 분석

  • Keum, Hong-Sik (ElectroMagnetic wave Technology Institute, RAPA) ;
  • An, Changyoung (Department of electronic engineering, Chungbuk National University) ;
  • Ryu, Heung-Gyoon (Department of electronic engineering, Chungbuk National University)
  • Received : 2014.09.18
  • Accepted : 2014.12.18
  • Published : 2015.01.30

Abstract

In this paper, we design a SSD(simultaneous single band duplex) system using RF cancellation and digital cancellation. And then, we analyze performance of the SSD system using pre-distorter with HPA non-linearity. Also, we analyze digital cancellation performance of the SSD system using pre-distorter with HPA non-linearity. Additionally, digital cancellation cancels residual self-interference. In linear conditions, digital cancellation can cancel self-interference of 40dB. Therefore, the SSD system has good BER performance because most of self-interference is canceled. But, in HPA non-linearity conditions, digital cancellation cancels residual self-interference of 25dB. In this conditions, self-interference is greater than desired signal. Therefore, bit informations of distant station can not be received. But, we confirm that if the proposed system uses pre-distorter then bit information of distant station can be received by HPA non-linearity compensation. Also, we confirm that even though the proposed system uses pre-distorter, if HPA non-linearity increases then digital cancellation performance is degraded by imperfect compensation of HPA non-linerity.

본 논문에서는 RF Cancellation과 Digital Cancellation을 사용하는 SSD(simultaneous single band duplex) 시스템을 설계하고 여기에서 HPA의 비선형 특성이 고려될 경우의 자기 간섭 신호 제거 성능 및 시스템의 전체적인 성능을 분석한다. 또한 일반적으로 잘 알려져 있는 전치 왜곡기를 사용하여 HPA 비선형 특성을 보상할 경우에 자기 간섭 신호 제거 성능 및 전체적인 시스템의 성능을 분석한다. 선형적인 조건에서는 Digital Cancellation에서 잔류 자기 간섭 신호 성분 약 40dB가 모두 제거 되어 좋은 성능이 나오지만 HPA 비선형 특성이 존재할 경우 이를 보상하지 않으면 자기 간섭 신호가 상대국에서 보낸 목표신호에 비하여 월등히 커지기 때문에 상대국에서 보낸 목표 신호를 수신할 수 없다. 그러나 여기에 전치 왜곡기를 사용하면 HPA 비선형성을 대부분 보완하여 상대국에서 보낸 신호를 수신할 수 있는 것을 확인하였다. 또한 전치왜곡기를 사용한다고 하더라도 HPA 비선형 특성을 완전하게 보완할 수 없기 때문에 HPA 비선형성이 증가함에 따라 Digital Cancellation의 자기 간섭 신호 감쇄 성능이 감소되는 것을 확인하였다.

Keywords

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