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Systematic design of transmitter and receiver architectures for flexible filter bank multi-carrier signals

机译:灵活的滤波器组多载波信号的发射机和接收机架构的系统设计

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Multi-carrier (MC) signaling is currently in the forefront of a myriad of systems, either wired or wireless, due to its high spectral efficiency, simple equalization, and robustness in front of multipath and narrowband interference sources. Despite its widespread deployment, the design of efficient architectures for MC systems becomes a challenging task when adopting filter bank multi-carrier (FBMC) modulation due to the inclusion of band-limited shaping pulses into the signal model. The reason to employ these pulses is the numerous improvements they offer in terms of performance, such as providing higher spectral confinement and no frequency overlap between adjacent subcarriers. These attributes lead to a reduced out-of-band power emission and a higher effective throughput. The latter is indeed possible by removing the need of cyclic prefix, which is in charge of preserving orthogonality among subcarriers in conventional MC systems. Nevertheless, the potential benefits of FBMC modulations are often obscured when it comes to an implementation point of view. In order to circumvent this limitation, the present paper provides a unified framework to describe all FBMC signals in which both signal design and implementation criteria are explicitly combined. In addition to this, we introduce the concept of flexible FBMC signals that, unlike their traditional MC counterparts, do not impose restrictions on the signal parameters (i.e., symbol rate, carrier spacing, or sampling frequency). Moreover, our framework also proposes a methodology that overcomes the implementation issues that characterize FBMC systems and allows us to derive simple, efficient, and time-invariant transmitter and receiver architectures.
机译:多载波(MC)信令由于其高频谱效率,简单的均衡性以及在多径和窄带干扰源面前的鲁棒性,目前处于无数有线或无线系统的最前沿。尽管已广泛部署,但由于在信号模型中包含了带宽受限的整形脉冲,因此在采用滤波器组多载波(FBMC)调制时,用于MC系统的高效体系结构的设计成为一项具有挑战性的任务。采用这些脉冲的原因是它们在性能方面提供了许多改进,例如提供更高的频谱限制,并且相邻子载波之间没有频率重叠。这些属性导致减少的带外功率发射和更高的有效吞吐量。后者确实可以通过消除循环前缀的需要而实现,循环前缀负责维护常规MC系统中子载波之间的正交性。但是,从实现的角度来看,FBMC调制的潜在优势通常被掩盖。为了避免这种局限性,本文提供了一个统一的框架来描述所有FBMC信号,其中信号设计和实现标准都明确地结合了起来。除此之外,我们介绍了灵活的FBMC信号的概念,与传统的MC同类产品不同,它不对信号参数(即符号率,载波间隔或采样频率)施加限制。此外,我们的框架还提出了一种方法,该方法可以克服表征FBMC系统的实现问题,并允许我们推导简单,高效且时不变的发送器和接收器体系结构。

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