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A Real-Time Architecture for Agile and FPGA-Based Concurrent Triple-Band All-Digital RF Transmission

机译:基于敏捷和基于FPGA的并发三频全数字RF传输的实时架构

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Contiguousoncontiguous carrier aggregation (CA) is one of the key features from 4G systems, which is expected to be evolved within 5G technologies. Thus, there is a need for the development of flexible, agile, and reconfigurable radio transceivers with a native support for the integration of multiple bands and multiple standards. All-digital radio-frequency (RF) transmitters have demonstrated promising potential to the design of next-generation RF transceivers. However, the simultaneous multiband transmission is still one of the key limitations of current approaches. To address this problem, this paper presents a fully digital and parallel architecture that enables the real-time design of agile and concurrent triple-band transmission. The proposed architecture is suitable for both contiguous and noncontiguous CA scenarios and considerably surpasses the state of the art in terms of frequency agility, maximum spacing between bands, and aggregated bandwidth. To enhance the system performance, an extension to a multilevel architecture based on the analog combination of pulsed waveforms is also demonstrated. Both architectures (two and seven levels) were implemented in a field-programmable gate array. Measurement results in terms of signal-to-noise ratio, error-vector magnitude, and adjacent-channel power ratio are presented and discussed. In Implementation-I, the two-level architecture presents a frequency agility from 0.1 to 2.5 GHz (with a frequency resolution of 4.88 MHz) with an aggregated bandwidth of 56.26 MHz. In Implementation-II, the seven-level design presents a frequency agility from 0.1 to 2 GHz (with a frequency resolution of 3.906 MHz) with an aggregated bandwidth of 112.5 MHz.
机译:连续/不连续载波聚合​​(CA)是4G系统的关键功能之一,预计将在5G技术中发展。因此,需要开发灵活,敏捷和可重新配置的无线电收发器,其具有对多频带和多种标准的集成的本地支持。全数字射频(RF)发射机已证明对下一代RF收发器的设计具有广阔的潜力。然而,同时多频带传输仍然是当前方法的关键限制之一。为了解决这个问题,本文提出了一种全数字和并行架构,可以实时设计敏捷和并行的三频传输。所提出的体系结构适用于连续和不连续的CA场景,并且在频率敏捷性,频带之间的最大间隔和聚合带宽方面都大大超过了现有技术。为了提高系统性能,还演示了基于脉冲波形模拟组合的多级体系结构扩展。两种架构(两个和七个级别)都在现场可编程门阵列中实现。给出并讨论了根据信噪比,误差矢量幅度和邻道功率比得出的测量结果。在实施方案I中,两级体系结构提供了从0.1到2.5 GHz(频率分辨率为4.88 MHz)的频率捷变,总带宽为56.26 MHz。在实施方案II中,七级设计提供了从0.1到2 GHz(频率分辨率为3.906 MHz)的频率捷变,总带宽为112.5 MHz。

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