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MLP-A(Multi Link Protection for Airborne Network Verifying) algorithms and implementation in multiple air mobile/verification links

다중 공중 이동/검증 링크에서의 MLP-A 알고리즘 및 구현

  • Received : 2021.11.30
  • Accepted : 2022.01.03
  • Published : 2022.03.31

Abstract

In this paper, the intermediate frequency transmission signal level between the network system-based baseband and RF unit consisting of multi-channel airborne relay devices and a lot of mission devices, which are currently undergoing technology development tasks, is kept constant at the reference signal level. Considering the other party's receiving input range, despite changes in the short-range long-range wireless communication environment, it presents a multi-link protection and MLP-A algorithm that allows signals to be transmitted stably and reliably through signal detection automatic gain control, and experiments and analysis considering short-distance and long-distance wireless environments were performed by designing, manufacturing, and implementing RF units to which MLP-A algorithms were applied, and applying distance calculation equations to the configuration of multiple air movements and verification networks. Through this, it was confirmed that a stable and reliable RF communication system can be operated.

본 논문에서는 현재 기술 개발 과제로 진행 중인 다중 공중 이동 및 검증을 위한 다채널 공중 중계 장치와 다수의 임무 장치로 구성된 네트워크 시스템 기반 기저대역부와 RF부간의 중간주파수 전송 신호 레벨을 기준 신호 레벨로 일정하게 유지하도록 하고, 상대방의 수신 입력 범위를 고려하여 단거리 장거리 무선 통신 환경 변화에도 RF부 내의 송수신 회로 상의 신호 탐지와 자동이득제어, 자동출력제어 기능을 통해 신호가 안정되고 신뢰성 있게 전송되도록 하는 다중 링크 보호, MLP-A 알고리즘을 제시한다. 그리고, MLP-A 알고리즘이 적용된 RF부를 설계, 제작, 구현하고 다중 공중 이동 및 검증 네트워크 구성으로 거리 산출 수식을 적용하여 단거리, 장거리 무선 환경을 고려한 실험 및 분석을 수행하였다. 이를 통해 안정적이고 신뢰성 있는 RF 통신 시스템 운용이 가능함을 확인하였다.

Keywords

Acknowledgement

This study was carried out as part of a project supported by Agency Defence Development(UC190038ED)

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