Shear wave elastography based on noise correlation and time reversal

Brum, Javier - Benech, Nicolás - Gallot, Thomas - Negreira, Carlos

Resumen:

Shear wave elastography (SWE) relies on the generation and tracking of coherent shear waves to image the tissue's shear elasticity. Recent technological developments have allowed SWE to be implemented in commercial ultrasound and magnetic resonance imaging systems, quickly becoming a new imaging modality in medicine and biology. However, coherent shear wave tracking sets a limitation to SWE because it either requires ultrafast frame rates (of up to 20 kHz), or alternatively, a phase-lock synchronization between shear wave-source and imaging device. Moreover, there are many applications where coherent shear wave tracking is not possible because scattered waves from tissue’s inhomogeneities, waves coming from muscular activity, heart beating or external vibrations interfere with the coherent shear wave. To overcome these limitations, several authors developed an alternative approach to extract the shear elasticity of tissues from a complex elastic wavefield. To control the wavefield, this approach relies on the analogy between time reversal and seismic noise cross-correlation. By cross-correlating the elastic field at different positions, which can be interpreted as a time reversal experiment performed in the computer, shear waves are virtually focused on any point of the imaging plane. Then, different independent methods can be used to image the shear elasticity, for example, tracking the coherent shear wave as it focuses, measuring the focus size or simply evaluating the amplitude at the focusing point. The main advantage of this approach is its compatibility with low imaging rates modalities, which has led to innovative developments and new challenges in the field of multi-modality elastography. The goal of this short review is to cover the major developments in wave-physics involving shear elasticity imaging using a complex elastic wavefield and its latest applications including slow imaging rate modalities and passive shear elasticity imaging based on physiological noise correlation.


Detalles Bibliográficos
2021
Ultrasound
Elasticity imaging
Near field effect
Passive elastography
Shear wave
Inglés
Universidad de la República
COLIBRI
https://hdl.handle.net/20.500.12008/40997
Acceso abierto
Licencia Creative Commons Atribución (CC - By 4.0)
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author Brum, Javier
author2 Benech, Nicolás
Gallot, Thomas
Negreira, Carlos
author2_role author
author
author
author_facet Brum, Javier
Benech, Nicolás
Gallot, Thomas
Negreira, Carlos
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dc.contributor.filiacion.none.fl_str_mv Brum Javier, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.
Benech Nicolás, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.
Gallot Thomas, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.
Negreira Carlos, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.
dc.creator.none.fl_str_mv Brum, Javier
Benech, Nicolás
Gallot, Thomas
Negreira, Carlos
dc.date.accessioned.none.fl_str_mv 2023-11-08T12:40:54Z
dc.date.available.none.fl_str_mv 2023-11-08T12:40:54Z
dc.date.issued.none.fl_str_mv 2021
dc.description.abstract.none.fl_txt_mv Shear wave elastography (SWE) relies on the generation and tracking of coherent shear waves to image the tissue's shear elasticity. Recent technological developments have allowed SWE to be implemented in commercial ultrasound and magnetic resonance imaging systems, quickly becoming a new imaging modality in medicine and biology. However, coherent shear wave tracking sets a limitation to SWE because it either requires ultrafast frame rates (of up to 20 kHz), or alternatively, a phase-lock synchronization between shear wave-source and imaging device. Moreover, there are many applications where coherent shear wave tracking is not possible because scattered waves from tissue’s inhomogeneities, waves coming from muscular activity, heart beating or external vibrations interfere with the coherent shear wave. To overcome these limitations, several authors developed an alternative approach to extract the shear elasticity of tissues from a complex elastic wavefield. To control the wavefield, this approach relies on the analogy between time reversal and seismic noise cross-correlation. By cross-correlating the elastic field at different positions, which can be interpreted as a time reversal experiment performed in the computer, shear waves are virtually focused on any point of the imaging plane. Then, different independent methods can be used to image the shear elasticity, for example, tracking the coherent shear wave as it focuses, measuring the focus size or simply evaluating the amplitude at the focusing point. The main advantage of this approach is its compatibility with low imaging rates modalities, which has led to innovative developments and new challenges in the field of multi-modality elastography. The goal of this short review is to cover the major developments in wave-physics involving shear elasticity imaging using a complex elastic wavefield and its latest applications including slow imaging rate modalities and passive shear elasticity imaging based on physiological noise correlation.
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dc.identifier.citation.es.fl_str_mv Brum, J, Benech, N, Gallot, T [y otros autores]. "Shear wave elastography based on noise correlation and time reversal". Frontiers in Physics. [en línea] 2021, 9: 617445. 9 h. DOI: 10.3389/fphy.2021.617445.
dc.identifier.doi.none.fl_str_mv 10.3389/fphy.2021.617445
dc.identifier.issn.none.fl_str_mv 2296-424X
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12008/40997
dc.language.iso.none.fl_str_mv en
eng
dc.publisher.es.fl_str_mv Frontiers
dc.relation.ispartof.es.fl_str_mv Frontiers in Physics, 2021, 9: 617445.
dc.rights.license.none.fl_str_mv Licencia Creative Commons Atribución (CC - By 4.0)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:COLIBRI
instname:Universidad de la República
instacron:Universidad de la República
dc.subject.es.fl_str_mv Ultrasound
Elasticity imaging
Near field effect
Passive elastography
Shear wave
dc.title.none.fl_str_mv Shear wave elastography based on noise correlation and time reversal
dc.type.es.fl_str_mv Artículo
dc.type.none.fl_str_mv info:eu-repo/semantics/article
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description Shear wave elastography (SWE) relies on the generation and tracking of coherent shear waves to image the tissue's shear elasticity. Recent technological developments have allowed SWE to be implemented in commercial ultrasound and magnetic resonance imaging systems, quickly becoming a new imaging modality in medicine and biology. However, coherent shear wave tracking sets a limitation to SWE because it either requires ultrafast frame rates (of up to 20 kHz), or alternatively, a phase-lock synchronization between shear wave-source and imaging device. Moreover, there are many applications where coherent shear wave tracking is not possible because scattered waves from tissue’s inhomogeneities, waves coming from muscular activity, heart beating or external vibrations interfere with the coherent shear wave. To overcome these limitations, several authors developed an alternative approach to extract the shear elasticity of tissues from a complex elastic wavefield. To control the wavefield, this approach relies on the analogy between time reversal and seismic noise cross-correlation. By cross-correlating the elastic field at different positions, which can be interpreted as a time reversal experiment performed in the computer, shear waves are virtually focused on any point of the imaging plane. Then, different independent methods can be used to image the shear elasticity, for example, tracking the coherent shear wave as it focuses, measuring the focus size or simply evaluating the amplitude at the focusing point. The main advantage of this approach is its compatibility with low imaging rates modalities, which has led to innovative developments and new challenges in the field of multi-modality elastography. The goal of this short review is to cover the major developments in wave-physics involving shear elasticity imaging using a complex elastic wavefield and its latest applications including slow imaging rate modalities and passive shear elasticity imaging based on physiological noise correlation.
eu_rights_str_mv openAccess
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identifier_str_mv Brum, J, Benech, N, Gallot, T [y otros autores]. "Shear wave elastography based on noise correlation and time reversal". Frontiers in Physics. [en línea] 2021, 9: 617445. 9 h. DOI: 10.3389/fphy.2021.617445.
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repository.name.fl_str_mv COLIBRI - Universidad de la República
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rights_invalid_str_mv Licencia Creative Commons Atribución (CC - By 4.0)
spelling Brum Javier, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.Benech Nicolás, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.Gallot Thomas, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.Negreira Carlos, Universidad de la República (Uruguay). Facultad de Ciencias. Instituto de Física.2023-11-08T12:40:54Z2023-11-08T12:40:54Z2021Brum, J, Benech, N, Gallot, T [y otros autores]. "Shear wave elastography based on noise correlation and time reversal". Frontiers in Physics. [en línea] 2021, 9: 617445. 9 h. DOI: 10.3389/fphy.2021.617445.2296-424Xhttps://hdl.handle.net/20.500.12008/4099710.3389/fphy.2021.617445Shear wave elastography (SWE) relies on the generation and tracking of coherent shear waves to image the tissue's shear elasticity. Recent technological developments have allowed SWE to be implemented in commercial ultrasound and magnetic resonance imaging systems, quickly becoming a new imaging modality in medicine and biology. However, coherent shear wave tracking sets a limitation to SWE because it either requires ultrafast frame rates (of up to 20 kHz), or alternatively, a phase-lock synchronization between shear wave-source and imaging device. Moreover, there are many applications where coherent shear wave tracking is not possible because scattered waves from tissue’s inhomogeneities, waves coming from muscular activity, heart beating or external vibrations interfere with the coherent shear wave. To overcome these limitations, several authors developed an alternative approach to extract the shear elasticity of tissues from a complex elastic wavefield. To control the wavefield, this approach relies on the analogy between time reversal and seismic noise cross-correlation. By cross-correlating the elastic field at different positions, which can be interpreted as a time reversal experiment performed in the computer, shear waves are virtually focused on any point of the imaging plane. Then, different independent methods can be used to image the shear elasticity, for example, tracking the coherent shear wave as it focuses, measuring the focus size or simply evaluating the amplitude at the focusing point. The main advantage of this approach is its compatibility with low imaging rates modalities, which has led to innovative developments and new challenges in the field of multi-modality elastography. The goal of this short review is to cover the major developments in wave-physics involving shear elasticity imaging using a complex elastic wavefield and its latest applications including slow imaging rate modalities and passive shear elasticity imaging based on physiological noise correlation.Submitted by Parodi Mónica (mparodi@fcien.edu.uy) on 2023-11-07T18:26:27Z No. of bitstreams: 3 license_rdf: 24251 bytes, checksum: 71ed42ef0a0b648670f707320be37b90 (MD5) license_rdf: 24251 bytes, checksum: 71ed42ef0a0b648670f707320be37b90 (MD5) 103389fphy2021617445.pdf: 1229793 bytes, checksum: 7b6615f9e1498b1f79f99a2a7394d520 (MD5)Approved for entry into archive by Faget Cecilia (lfaget@fcien.edu.uy) on 2023-11-08T12:38:22Z (GMT) No. of bitstreams: 3 license_rdf: 24251 bytes, checksum: 71ed42ef0a0b648670f707320be37b90 (MD5) license_rdf: 24251 bytes, checksum: 71ed42ef0a0b648670f707320be37b90 (MD5) 103389fphy2021617445.pdf: 1229793 bytes, checksum: 7b6615f9e1498b1f79f99a2a7394d520 (MD5)Made available in DSpace by Luna Fabiana (fabiana.luna@seciu.edu.uy) on 2023-11-08T12:40:54Z (GMT). No. of bitstreams: 3 license_rdf: 24251 bytes, checksum: 71ed42ef0a0b648670f707320be37b90 (MD5) license_rdf: 24251 bytes, checksum: 71ed42ef0a0b648670f707320be37b90 (MD5) 103389fphy2021617445.pdf: 1229793 bytes, checksum: 7b6615f9e1498b1f79f99a2a7394d520 (MD5) Previous issue date: 20219 h.application/pdfenengFrontiersFrontiers in Physics, 2021, 9: 617445.Las obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad de la República.(Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. 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- Universidad de la Repúblicafalse
spellingShingle Shear wave elastography based on noise correlation and time reversal
Brum, Javier
Ultrasound
Elasticity imaging
Near field effect
Passive elastography
Shear wave
status_str publishedVersion
title Shear wave elastography based on noise correlation and time reversal
title_full Shear wave elastography based on noise correlation and time reversal
title_fullStr Shear wave elastography based on noise correlation and time reversal
title_full_unstemmed Shear wave elastography based on noise correlation and time reversal
title_short Shear wave elastography based on noise correlation and time reversal
title_sort Shear wave elastography based on noise correlation and time reversal
topic Ultrasound
Elasticity imaging
Near field effect
Passive elastography
Shear wave
url https://hdl.handle.net/20.500.12008/40997