Morphological Reconstruction Improves Microvessel Mapping in Super-Resolution Ultrasound

Fuente: arXiv
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Hauptverfasser: Schoen Jr, Scott, Zhao, Zhigen, Alva, Ashley, Huang, Chengwu, Chen, Shigao, Arvanitis, Costas
Format: Preprint
Veröffentlicht: 2020
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author Schoen Jr, Scott
Zhao, Zhigen
Alva, Ashley
Huang, Chengwu
Chen, Shigao
Arvanitis, Costas
author_facet Schoen Jr, Scott
Zhao, Zhigen
Alva, Ashley
Huang, Chengwu
Chen, Shigao
Arvanitis, Costas
contents Generation of super-resolution (SR) ultrasound (US) images, created from the successive local-ization of individual microbubbles in the circulation, has enabled the visualization of microvascular structure and flow at a level of detail that was not possible previously. Despite rapid progress, tradeoffs between spatial and temporal resolution may challenge the translation of this promising technology to the clinic. To temper these trade-offs, we propose a method based on morphological image reconstriction. This method can extract from ultrafast contrast-enhanced ultrasound (CEUS) images hundreds of microbubble peaks per image (312-by-180 pixels) with intensity values varying by an order of magnitude. Specifically, it offers a fourfold increase in the number of peaks detected per frame, requires on the order of 100 ms for processing, and is robust to additive electronic noise (down to 3.6 dB CNR in CEUS images). By integrating this method to a SR framework we demonstrate a 6-fold improvement in spatial resolution, as compared to CEUS, in imaging chicken embryo microvessels. This method that is computationally efficient and, thus, scalable to large data sets, may augment the abilities of SR-US in imaging microvascular structure and function.
format Preprint
id arxiv_https___arxiv_org_abs_2009_09129
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Morphological Reconstruction Improves Microvessel Mapping in Super-Resolution Ultrasound
Schoen Jr, Scott
Zhao, Zhigen
Alva, Ashley
Huang, Chengwu
Chen, Shigao
Arvanitis, Costas
Image and Video Processing
Generation of super-resolution (SR) ultrasound (US) images, created from the successive local-ization of individual microbubbles in the circulation, has enabled the visualization of microvascular structure and flow at a level of detail that was not possible previously. Despite rapid progress, tradeoffs between spatial and temporal resolution may challenge the translation of this promising technology to the clinic. To temper these trade-offs, we propose a method based on morphological image reconstriction. This method can extract from ultrafast contrast-enhanced ultrasound (CEUS) images hundreds of microbubble peaks per image (312-by-180 pixels) with intensity values varying by an order of magnitude. Specifically, it offers a fourfold increase in the number of peaks detected per frame, requires on the order of 100 ms for processing, and is robust to additive electronic noise (down to 3.6 dB CNR in CEUS images). By integrating this method to a SR framework we demonstrate a 6-fold improvement in spatial resolution, as compared to CEUS, in imaging chicken embryo microvessels. This method that is computationally efficient and, thus, scalable to large data sets, may augment the abilities of SR-US in imaging microvascular structure and function.
title Morphological Reconstruction Improves Microvessel Mapping in Super-Resolution Ultrasound
topic Image and Video Processing
url https://arxiv.org/abs/2009.09129