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ACE-BOC: dual-frequency constant envelope multiplexing for satellite navigation

机译:ACE-BOC:用于卫星导航的双频恒定包络复用

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摘要

In the signal design of new generation global navigation satellite systems, there is a strong demand for multiplexing multiple binary spreading signals on two adjacent frequencies into an integrated signal with a constant envelope. In this paper, a dual-frequency constant envelope multiplexing (DCEM) technique with high-design flexibility based on subcarrier waveform reconstruction, named asymmetric constant envelope binary offset carrier (ACE-BOC), is presented. This multiplexing technique can be seen as a generalized alternate BOC. It can combine four or fewer independent, bipolar, direct sequence spread spectrum signals onto two sidebands of a spectrum-split integrated signal, where each sideband consists of two or fewer signals with arbitrary power ratio modulated onto the quadrature components. The design principle, diversified generation methods of ACE-BOC signals, as well as the characteristics in both time and frequency domains are investigated. Multiplexing efficiency and receiving performance of this signal are also analyzed. Analysis with typical examples shows that, for both transmitters and receivers, ACE-BOC signals have multiple processing forms. Compared with existing DCEM methods, ACE-BOC has much higher design flexibility in the number of signal components, power ratio among components, hardware complexity of both transmitters and receivers, and spectrum compatibility. Such high-level design flexibility provides system designers great room in signal scheme optimization for varied navigation applications in the future.
机译:在新一代全球导航卫星系统的信号设计中,强烈需要将两个相邻频率上的多个二进制扩频信号多路复用为具有恒定包络的集成信号。本文提出了一种基于子载波波形重构的具有高设计灵活性的双频恒定包络复用技术,称为非对称恒定包络二进制偏移载波(ACE-BOC)。这种多路复用技术可以看作是广义的备用BOC。它可以将四个或更少的独立,双极性,直接序列扩频信号组合到频谱分割集成信号的两个边带上,其中每个边带由两个或更少的信号组成,并且任意功率比调制到正交分量上。研究了ACE-BOC信号的设计原理,多样化的产生方法以及时域和频域特性。还分析了该信号的复用效率和接收性能。通过对典型示例的分析表明,对于发射机和接收机,ACE-BOC信号都有多种处理形式。与现有的DCEM方法相比,ACE-BOC在信号组件的数量,组件之间的功率比,发送器和接收器的硬件复杂性以及频谱兼容性方面具有更高的设计灵活性。这种高水平的设计灵活性为系统设计人员在将来针对各种导航应用的信号方案优化提供了广阔的空间。

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