A novel design framework of synthetic radial aperture focusing for volumetric transrectal ultrasound imaging
In this paper, we present a novel design framework of synthetic radial aperture focusing for three-dimensional (3D) transrectal ultrasound imaging (TRUS-rSAF), in which multiple transmittance/reception events at different scanning angles are synthesized to reconstruct a radial plane in the target vo...
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Veröffentlicht in: | Journal of Computational Design and Engineering 2022-10, Vol.9 (5), p.1852-1865 |
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creator | Song, Hyunwoo Kang, Jeeun Boctor, Emad M |
description | In this paper, we present a novel design framework of synthetic radial aperture focusing for three-dimensional (3D) transrectal ultrasound imaging (TRUS-rSAF), in which multiple transmittance/reception events at different scanning angles are synthesized to reconstruct a radial plane in the target volume, securing high spatial resolution and texture uniformity. A theory-based design approach has not been available to push the envelope of the 3D rSAF technique. Herein, a closed-form analytical description of the TRUS-rSAF method is presented for the first time, effectively delineating spatial resolution and grating lobe positions in the radial dimension of a TRUS transducer. We demonstrate a solid optimization workflow based on the theoretical foundation to improve its spatiotemporal resolution, grating lobe artifacts, and signal-to-noise ratio. A specific design criterion was considered to outperform a clinical 3D TRUS imaging as a reference (TRUS-REF), where each radial plane is reconstructed with a single transmittance/reception event using a motorized actuator. The optimized TRUS-rSAF method significantly enhanced spatial resolution up to 50% over the TRUS-REF method while providing clinically effective temporal resolution (2–8 volume/sec) with negligible grating lobe artifacts. The results indicate that the proposed design approach would enable a novel TRUS imaging solution in clinics. |
doi_str_mv | 10.1093/jcde/qwac083 |
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A theory-based design approach has not been available to push the envelope of the 3D rSAF technique. Herein, a closed-form analytical description of the TRUS-rSAF method is presented for the first time, effectively delineating spatial resolution and grating lobe positions in the radial dimension of a TRUS transducer. We demonstrate a solid optimization workflow based on the theoretical foundation to improve its spatiotemporal resolution, grating lobe artifacts, and signal-to-noise ratio. A specific design criterion was considered to outperform a clinical 3D TRUS imaging as a reference (TRUS-REF), where each radial plane is reconstructed with a single transmittance/reception event using a motorized actuator. The optimized TRUS-rSAF method significantly enhanced spatial resolution up to 50% over the TRUS-REF method while providing clinically effective temporal resolution (2–8 volume/sec) with negligible grating lobe artifacts. The results indicate that the proposed design approach would enable a novel TRUS imaging solution in clinics.</description><identifier>ISSN: 2288-5048</identifier><identifier>ISSN: 2288-4300</identifier><identifier>EISSN: 2288-5048</identifier><identifier>DOI: 10.1093/jcde/qwac083</identifier><language>eng</language><publisher>Oxford University Press</publisher><subject>Design and construction ; Imaging systems ; Ultrasound imaging</subject><ispartof>Journal of Computational Design and Engineering, 2022-10, Vol.9 (5), p.1852-1865</ispartof><rights>COPYRIGHT 2022 Oxford University Press</rights><rights>The Author(s) 2022. 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A theory-based design approach has not been available to push the envelope of the 3D rSAF technique. Herein, a closed-form analytical description of the TRUS-rSAF method is presented for the first time, effectively delineating spatial resolution and grating lobe positions in the radial dimension of a TRUS transducer. We demonstrate a solid optimization workflow based on the theoretical foundation to improve its spatiotemporal resolution, grating lobe artifacts, and signal-to-noise ratio. A specific design criterion was considered to outperform a clinical 3D TRUS imaging as a reference (TRUS-REF), where each radial plane is reconstructed with a single transmittance/reception event using a motorized actuator. The optimized TRUS-rSAF method significantly enhanced spatial resolution up to 50% over the TRUS-REF method while providing clinically effective temporal resolution (2–8 volume/sec) with negligible grating lobe artifacts. The results indicate that the proposed design approach would enable a novel TRUS imaging solution in clinics.</description><subject>Design and construction</subject><subject>Imaging systems</subject><subject>Ultrasound imaging</subject><issn>2288-5048</issn><issn>2288-4300</issn><issn>2288-5048</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2022</creationdate><recordtype>article</recordtype><recordid>eNptkUtLxDAUhYsoKOrOHxBw48LRvNqmG2EQXyC40XXIJDc1miZj0o74780wgyhIFrk3-e7hcE9VnRB8QXDHLt-0gcuPT6WxYDvVAaVCzGrMxe6ver86zvkNY0xayjDpDio_RyGuwCMD2fUB2aQG-IzpHUWL8lcYX2F0GiVlnPJILSGNUwJko56yC30pElpFPw0wpsKNSYWcQI8FnnzpcpyCQW5QfaGPqj2rfIbj7X1YvdzePF_fzx6f7h6u548zzakYZ2RhaIOF0p3AoiFcU1a3zQK33GqGsQFmOFcLIMZ2HEpvupbXFFsBQFsF7LC62ugup8UARkMoTrxcpuIjfcmonPz7E9yr7ONKdnXDGtoVgbOtQIofE-RRDi5r8F4FiFOWtKVtwwkmdUFPN2ivPEgXbCyKeo3LeVt3xRkjTaEu_qHKMTA4HQNYV97_DJxvBnSKuWzU_rgnWK7zluu85TZv9g2GQaJX</recordid><startdate>20221001</startdate><enddate>20221001</enddate><creator>Song, Hyunwoo</creator><creator>Kang, Jeeun</creator><creator>Boctor, Emad M</creator><general>Oxford University Press</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope><scope>5PM</scope><orcidid>https://orcid.org/0000-0001-6678-2744</orcidid></search><sort><creationdate>20221001</creationdate><title>A novel design framework of synthetic radial aperture focusing for volumetric transrectal ultrasound imaging</title><author>Song, Hyunwoo ; Kang, Jeeun ; Boctor, Emad M</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c428t-1bd2608ac9808614c23576b074fc300de3d44abe1df94e0ded974520f8ee27ae3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2022</creationdate><topic>Design and construction</topic><topic>Imaging systems</topic><topic>Ultrasound imaging</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Song, Hyunwoo</creatorcontrib><creatorcontrib>Kang, Jeeun</creatorcontrib><creatorcontrib>Boctor, Emad M</creatorcontrib><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><collection>PubMed Central (Full Participant titles)</collection><jtitle>Journal of Computational Design and Engineering</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Song, Hyunwoo</au><au>Kang, Jeeun</au><au>Boctor, Emad M</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>A novel design framework of synthetic radial aperture focusing for volumetric transrectal ultrasound imaging</atitle><jtitle>Journal of Computational Design and Engineering</jtitle><date>2022-10-01</date><risdate>2022</risdate><volume>9</volume><issue>5</issue><spage>1852</spage><epage>1865</epage><pages>1852-1865</pages><issn>2288-5048</issn><issn>2288-4300</issn><eissn>2288-5048</eissn><abstract>In this paper, we present a novel design framework of synthetic radial aperture focusing for three-dimensional (3D) transrectal ultrasound imaging (TRUS-rSAF), in which multiple transmittance/reception events at different scanning angles are synthesized to reconstruct a radial plane in the target volume, securing high spatial resolution and texture uniformity. A theory-based design approach has not been available to push the envelope of the 3D rSAF technique. Herein, a closed-form analytical description of the TRUS-rSAF method is presented for the first time, effectively delineating spatial resolution and grating lobe positions in the radial dimension of a TRUS transducer. We demonstrate a solid optimization workflow based on the theoretical foundation to improve its spatiotemporal resolution, grating lobe artifacts, and signal-to-noise ratio. A specific design criterion was considered to outperform a clinical 3D TRUS imaging as a reference (TRUS-REF), where each radial plane is reconstructed with a single transmittance/reception event using a motorized actuator. The optimized TRUS-rSAF method significantly enhanced spatial resolution up to 50% over the TRUS-REF method while providing clinically effective temporal resolution (2–8 volume/sec) with negligible grating lobe artifacts. 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subjects | Design and construction Imaging systems Ultrasound imaging |
title | A novel design framework of synthetic radial aperture focusing for volumetric transrectal ultrasound imaging |
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