eprintid: 17625 rev_number: 2 eprint_status: archive userid: 1 dir: disk0/00/01/76/25 datestamp: 2023-12-19 03:23:58 lastmod: 2023-12-19 03:23:58 status_changed: 2023-12-19 03:08:23 type: article metadata_visibility: show creators_name: Iqbal, A. creators_name: Drieberg, M. creators_name: Jeoti, V. creators_name: Aziz, A.B.A. creators_name: Stojanovi�, G.M. creators_name: Simi�, M. creators_name: Hussain, N. title: A Flexible Multiband Multicarrier Signal Design for Broadband Channel Sounding Applications ispublished: pub keywords: 5G mobile communication systems; Bandwidth; Network architecture; Orthogonal frequency division multiplexing; Radar; Software radio; Ultra-wideband (UWB), 5g/6g; Channel characteristics; Channel impulse response; Channel sounders; MB-OFDM; Ofdm; Papr; Passive sensing; Radar sensing; Signal design, Impulse response note: cited By 0 abstract: Radio frequency radars have garnered considerable attention in contactless sensing. The congestion in frequency bands and ultra-wideband (UWB) sensing requirements pose challenges to the design of the radars. RF radars can be alternatively considered as channel sounders, which too are facing new channel characterization and modeling challenges owing to new frequency bands in 5th generation (5G) and 6th generation (6G) cellular networks. Various sounding systems were developed to meet the frequency and system bandwidth requirements. However, most offer limited system bandwidth and cannot be easily tuned for different applications. This work aims to address these challenges, by providing a new multiband multicarrier architecture and flexible signal design for channel sounding. Firstly, a channel sounder architecture is developed using commercial software-defined radios (SDRs). Secondly, a new phase-modulated multiband orthogonal frequency division multiplexing (MB-OFDM) waveform, which is designed to provide a flexible frame structure with a low peak-to-average power ratio (PAPR), is proposed to optimize the pulse repetition period for the sounding system by maintaining all the valuable properties of OFDM. The overall system is implemented in a simulated environment, and the results show an improved PAPR performance of the MBOFDM signal design. In addition, the overall system is tested for different channel conditions and validated against theoretical data. The numerical experiments show that the proposed system is a viable option for UWB channel sounding for a wide range of applications © 2022. Human-centric Computing and Information Sciences.All Rights Reserved date: 2022 publisher: Korea Information Processing Society official_url: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85131440257&doi=10.22967%2fHCIS.2022.12.019&partnerID=40&md5=e587787fea19b223e58686ded6e9ac89 id_number: 10.22967/HCIS.2022.12.019 full_text_status: none publication: Human-centric Computing and Information Sciences volume: 12 refereed: TRUE issn: 21921962 citation: Iqbal, A. and Drieberg, M. and Jeoti, V. and Aziz, A.B.A. and Stojanovi�, G.M. and Simi�, M. and Hussain, N. (2022) A Flexible Multiband Multicarrier Signal Design for Broadband Channel Sounding Applications. Human-centric Computing and Information Sciences, 12. ISSN 21921962