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Optimization of high-channel count, switch matrices for multinuclear, high-field MRI

Modern magnetic resonance imaging systems are equipped with a large number of receive connectors in order to optimally support a large field-of-view and/or high acceleration in parallel imaging using high-channel count, phased array coils. Given that the MR system is equipped with a limited number o...

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Autores principales: Felder, Jörg, Choi, Chang-Hoon, Ko, Yunkyoung, Shah, N. Jon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7430713/
https://www.ncbi.nlm.nih.gov/pubmed/32804972
http://dx.doi.org/10.1371/journal.pone.0237494
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author Felder, Jörg
Choi, Chang-Hoon
Ko, Yunkyoung
Shah, N. Jon
author_facet Felder, Jörg
Choi, Chang-Hoon
Ko, Yunkyoung
Shah, N. Jon
author_sort Felder, Jörg
collection PubMed
description Modern magnetic resonance imaging systems are equipped with a large number of receive connectors in order to optimally support a large field-of-view and/or high acceleration in parallel imaging using high-channel count, phased array coils. Given that the MR system is equipped with a limited number of digitizing receivers and in order to support operation of multinuclear coil arrays, these connectors need to be flexibly routed to the receiver outside the RF shielded examination room. However, for a number of practical, economic and safety reasons, it is better to only route a subset of the connectors. This is usually accomplished with the use of switch matrices. These exist in a variety of topologies and differ in routing flexibility and technological implementation. A highly flexible implementation is a crossbar topology that allows to any one input to be routed to any one output and can use single PIN diodes as active elements. However, in this configuration, long open-ended transmission lines can potentially remain connected to the signal path leading to high transmission losses. Thus, especially for high-field systems compensation mechanisms are required to remove the effects of open-ended transmission line stubs. The selection of a limited number of lumped element reactance values to compensate for the for the effect of transmission line stubs in large-scale switch matrices capable of supporting multi-nuclear operation is non-trivial and is a combinatorial problem of high order. Here, we demonstrate the use of metaheuristic approaches to optimize the circuit design of these matrices that additionally carry out the optimization of distances between the parallel transmission lines. For a matrix with 128 inputs and 64 outputs a realization is proposed that displays a worst-case insertion loss of 3.8 dB.
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spelling pubmed-74307132020-08-20 Optimization of high-channel count, switch matrices for multinuclear, high-field MRI Felder, Jörg Choi, Chang-Hoon Ko, Yunkyoung Shah, N. Jon PLoS One Research Article Modern magnetic resonance imaging systems are equipped with a large number of receive connectors in order to optimally support a large field-of-view and/or high acceleration in parallel imaging using high-channel count, phased array coils. Given that the MR system is equipped with a limited number of digitizing receivers and in order to support operation of multinuclear coil arrays, these connectors need to be flexibly routed to the receiver outside the RF shielded examination room. However, for a number of practical, economic and safety reasons, it is better to only route a subset of the connectors. This is usually accomplished with the use of switch matrices. These exist in a variety of topologies and differ in routing flexibility and technological implementation. A highly flexible implementation is a crossbar topology that allows to any one input to be routed to any one output and can use single PIN diodes as active elements. However, in this configuration, long open-ended transmission lines can potentially remain connected to the signal path leading to high transmission losses. Thus, especially for high-field systems compensation mechanisms are required to remove the effects of open-ended transmission line stubs. The selection of a limited number of lumped element reactance values to compensate for the for the effect of transmission line stubs in large-scale switch matrices capable of supporting multi-nuclear operation is non-trivial and is a combinatorial problem of high order. Here, we demonstrate the use of metaheuristic approaches to optimize the circuit design of these matrices that additionally carry out the optimization of distances between the parallel transmission lines. For a matrix with 128 inputs and 64 outputs a realization is proposed that displays a worst-case insertion loss of 3.8 dB. Public Library of Science 2020-08-17 /pmc/articles/PMC7430713/ /pubmed/32804972 http://dx.doi.org/10.1371/journal.pone.0237494 Text en © 2020 Felder et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Felder, Jörg
Choi, Chang-Hoon
Ko, Yunkyoung
Shah, N. Jon
Optimization of high-channel count, switch matrices for multinuclear, high-field MRI
title Optimization of high-channel count, switch matrices for multinuclear, high-field MRI
title_full Optimization of high-channel count, switch matrices for multinuclear, high-field MRI
title_fullStr Optimization of high-channel count, switch matrices for multinuclear, high-field MRI
title_full_unstemmed Optimization of high-channel count, switch matrices for multinuclear, high-field MRI
title_short Optimization of high-channel count, switch matrices for multinuclear, high-field MRI
title_sort optimization of high-channel count, switch matrices for multinuclear, high-field mri
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7430713/
https://www.ncbi.nlm.nih.gov/pubmed/32804972
http://dx.doi.org/10.1371/journal.pone.0237494
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