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Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications

Co-channel interference between transmit and receive antennas means that simultaneous transmission and reception (STAR) of signals on the same frequency is an engineering challenge when co-locating the transmit and receive channels. Due to advancements in Radio Frequency (RF) receiver and antenna ha...

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Main Author: Parker, Asif Ahmed
Other Authors: Schonken, Francois
Format: Thesis
Language:English
Published: Department of Electrical Engineering 2020
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access_status_str Open Access
author Parker, Asif Ahmed
author2 Schonken, Francois
author_browse Parker, Asif Ahmed
Schonken, Francois
author_facet Schonken, Francois
Parker, Asif Ahmed
author_sort Parker, Asif Ahmed
collection Thesis
description Co-channel interference between transmit and receive antennas means that simultaneous transmission and reception (STAR) of signals on the same frequency is an engineering challenge when co-locating the transmit and receive channels. Due to advancements in Radio Frequency (RF) receiver and antenna hardware, as well as electromagnetic computation software, this technology is becoming more and more realisable, with applications in the fields of radar and communications. For a STAR system to be effective, high isolation (in excess of 90 dB) between transmit and receive channels is required to avoid self-interference. A lack of isolation will result in a significant reduction in the receiver sensitivity and dynamic range, reducing its ability to adequately detect incoming signals. This study involves the design and analysis of a STAR demonstrator where the theoretical and practical viability of such a system is evaluated. High isolation is achieved through the use of a combination of passive suppression, as well as analogue and digital cancellation techniques. The design consists of three cancellation layers: passive suppression, which uses a transmit antenna array to increase the transmit-receive antenna isolation through null placement; analogue cancellation, which aims to reduce self-interference by subtracting a copy of the estimated interference signal from the received signal; and digital cancellation, which uses adaptive filtering in the digital domain to further suppress residual self-interference. The demonstrator is tested in a typical real-world environment to characterise the performance of the system. The measured isolation between transmit and receive antennas is 29.4 dB. Passive suppression increases this isolation to 51.5 dB when using a four element linear transmit array. Analogue cancellation provides up to 30 dB of additional isolation, with digital cancellation providing a further 20 dB of suppression. Together, as an integrated system, the demonstrator is capable of providing a combined 101.5 dB of self-interference suppression. This clearly demonstrates that a STAR system is viable through the use of a multi-layer cancellation scheme comprising of passive suppression, analogue cancellation and digital cancellation techniques.
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institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:31:34.243Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2020
publishDateRange 2020
publishDateSort 2020
publisher Department of Electrical Engineering
publisherStr Department of Electrical Engineering
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source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/30882 Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications Parker, Asif Ahmed Schonken, Francois O'Hagan, Daniel Engineering Co-channel interference between transmit and receive antennas means that simultaneous transmission and reception (STAR) of signals on the same frequency is an engineering challenge when co-locating the transmit and receive channels. Due to advancements in Radio Frequency (RF) receiver and antenna hardware, as well as electromagnetic computation software, this technology is becoming more and more realisable, with applications in the fields of radar and communications. For a STAR system to be effective, high isolation (in excess of 90 dB) between transmit and receive channels is required to avoid self-interference. A lack of isolation will result in a significant reduction in the receiver sensitivity and dynamic range, reducing its ability to adequately detect incoming signals. This study involves the design and analysis of a STAR demonstrator where the theoretical and practical viability of such a system is evaluated. High isolation is achieved through the use of a combination of passive suppression, as well as analogue and digital cancellation techniques. The design consists of three cancellation layers: passive suppression, which uses a transmit antenna array to increase the transmit-receive antenna isolation through null placement; analogue cancellation, which aims to reduce self-interference by subtracting a copy of the estimated interference signal from the received signal; and digital cancellation, which uses adaptive filtering in the digital domain to further suppress residual self-interference. The demonstrator is tested in a typical real-world environment to characterise the performance of the system. The measured isolation between transmit and receive antennas is 29.4 dB. Passive suppression increases this isolation to 51.5 dB when using a four element linear transmit array. Analogue cancellation provides up to 30 dB of additional isolation, with digital cancellation providing a further 20 dB of suppression. Together, as an integrated system, the demonstrator is capable of providing a combined 101.5 dB of self-interference suppression. This clearly demonstrates that a STAR system is viable through the use of a multi-layer cancellation scheme comprising of passive suppression, analogue cancellation and digital cancellation techniques. 2020-02-06T09:11:47Z 2020-02-06T09:11:47Z 2019 2020-02-04T07:27:03Z Master Thesis Masters MSc http://hdl.handle.net/11427/30882 eng application/pdf Department of Electrical Engineering Faculty of Engineering and the Built Environment
spellingShingle Engineering
Parker, Asif Ahmed
Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications
thesis_degree_str Master's
title Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications
title_full Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications
title_fullStr Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications
title_full_unstemmed Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications
title_short Self-Interference Cancellation for Simultaneous Transmit and Receive (STAR) Applications
title_sort self interference cancellation for simultaneous transmit and receive star applications
topic Engineering
url http://hdl.handle.net/11427/30882
work_keys_str_mv AT parkerasifahmed selfinterferencecancellationforsimultaneoustransmitandreceivestarapplications