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Spectral efficiency enhancements utilizing analog RF frontend in-band interference cancellation

机译:利用模拟RF前端带内干扰消除技术来提高频谱效率

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Today's radios operate invariably in half duple) mode, i.e., they can either transmit or receive, but not both simultaneously in the same frequency band. The inability to simultaneously transmit and receive inherently reduces the spectral efficiency of a radio channel by 50%. Spectrum scarcity and souped-up demand for data from the smar devices, the wireless networks have been unable to cope with the growing needs of the user community. The realization of the full duplex mode operation in the prevailing circumstance has attracted a lot of attention from both industry and academia. The fundamental obstacle in achieving the ful duplex mode operation emanates from the self-induced interference from its own transmitted signal, which interfere with the received Signal of Interest (SoI). Majority of wireles communication systems operate in half duplex mode (inheren inefficiency) to avoid self-interference and to preven desensitizes of their receive chain. The key challenge in achieving the full-duplex radio operation in the same frequency band originates from the huge power differentia between transmitted power and the received signal of interest arriving from a faraway transmitter as well as the nonlinearity of the Radio Frequency Front End (RFFE) transmit/receive components. This large power differential saturates the Low Noise Amplifiers (LNA) and overwhelms the dynamic range o the Analog to Digital Converter (ADC) in the receive chain raising the Receive (Rx) noise floor to an undesirably high level. Many analog and digital cancellation techniques have been proposed and implemented with limited success in specific environments. A more generic technique, which allow for adaptive cancellation of interference from various source in dynamic environment, has been studied, implemented, and the result has been documented in this paper.
机译:当今的无线电始终以半双工模式工作,即它们既可以发射也可以接收,但不能在同一频带上同时发射或接收。无法同时发送和接收会固有地将无线电信道的频谱效率降低50%。频谱稀缺和对来自smar设备的数据的需求激增,无线网络无法满足用户群体不断增长的需求。在当前情况下实现全双工模式已经引起了业界和学术界的广泛关注。实现全双工模式操作的基本障碍来自其自身发送信号的自感应干扰,该干扰会干扰接收到的目标信号(SoI)。大多数无线通信系统都以半双工模式运行(固有的低效率),以避免自我干扰并防止其接收链不灵敏。在相同频带上实现全双工无线电操作的主要挑战来自发射功率与来自遥远发射机的目标接收信号之间的巨大功率差异,以及射频前端(RFFE)的非线性传输/接收组件。如此大的功率差会使低噪声放大器(LNA)饱和,并压倒了接收链中模数转换器(ADC)的动态范围,从而使接收(Rx)噪声本底上升到了不希望的高水平。已经提出并实现了许多模拟和数字消除技术,但在特定环境中却取得了有限的成功。已经研究,实现了一种更通用的技术,该技术可以自适应地消除动态环境中来自各种来源的干扰,并在本文中记录了结果。

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