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Cognitive radio paradigm and recent trends of antenna systems in the UWB 3.1–10.6 GHz

Anveshkumar N. ETC, GHRCE, Nagpur, India|
Dhasarathan V. Division of Computational Physics, Institute for Computational Science, Ton Duc Thang University, Ho Chi Minh City, Viet Nam| Gandhi A.S. ECE, VNIT, Nagpur, India|

Wireless Networks Số 5, năm 2020 (Tập 26, trang 3257-3274)

ISSN: 10220038

ISSN: 10220038

DOI: 10.1007/s11276-019-02245-7

Tài liệu thuộc danh mục: Scopus

Article

English

Từ khóa: Antenna arrays; Cognitive radio; Cognitive systems; Computer hardware; Field programmable gate arrays (FPGA); Microwave antennas; Signal receivers; Software radio; Arbitrary waveform generator; Hardware realization; Multi-port; Narrow-band antennas; Reconfigurable antenna; Software-defined radios; Ultra wide-band antennas; Wireless communication applications; Ultra-wideband (UWB)
Tóm tắt tiếng anh
This article mainly focuses on the concept of cognitive radio paradigm in the ultra-wideband 3.1–10.6 GHz and recent trends of various antenna systems required for these applications. This paper also presents the working principle of cognitive radio model and the importance of UWB 3.1–10.6 GHz technology for various wireless communication applications. In the cognitive radio model, ultra-wideband antennas are employed for free channels identification and reconfigurable narrow band antennas for communication. Based on the utilization of different UWB and narrow band antennas, the antennas are divided into four distinct categories. The first category covers individual UWB and narrow band antennas. The second category includes reconfigurable UWB/NB antennas. The third category consists of dual-port integrated UWB and NB antennas. The fourth category comprise of multi-port integrated UWB and NB antennas. So, this paper reports all the four categories of ultra-wideband and frequency reconfigurable narrow band antennas clearly. It also focuses on the recent trends in these antennas. Moreover, it discusses about the comparison study of various antennas and their characteristics. Furthermore, a discussion on hardware working principle and its implementation is presented. The hardware realization is presented using arbitrary waveform generator, real-time signal analyzer, software defined radio platforms, field programmable gate arrays and universal software radio peripheral. © 2020, Springer Science+Business Media, LLC, part of Springer Nature.

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