Literature DB >> 35519281

Analysis of strain estimation methods in phase-sensitive compression optical coherence elastography.

Jiayue Li1,2,3,4, Ewelina Pijewska5,4, Qi Fang1,2, Maciej Szkulmowski5, Brendan F Kennedy1,2,3.   

Abstract

In compression optical coherence elastography (OCE), deformation is quantified as the local strain at each pixel in the OCT field-of-view. A range of strain estimation methods have been demonstrated, yet it is unclear which method provides the best performance. Here, we analyze the two most prevalent strain estimation methods used in phase-sensitive compression OCE, i.e., weighted least squares (WLS) and the vector method. We introduce a framework to compare strain imaging metrics, incorporating strain sensitivity, strain signal-to-noise ratio (SNR), strain resolution, and strain accuracy. In addition, we propose a new phase unwrapping algorithm in OCE, fast phase unwrapping (FPU), and combine it with WLS, termed WLSFPU. Using the framework, we compare this new strain estimation method with both a current implementation of WLS that incorporates weighted phase unwrapping (WPU), termed WLSWPU, and the vector method. Our analysis reveals that the three methods provide similar strain sensitivity, strain SNR, and strain resolution, but that WLSFPU extends the dynamic range of accurate, measurable local strain, e.g., measuring a strain of 2.5 mɛ with ∼4% error, that is ×11 and ×15 smaller than the error measured using WLSWPU and the vector method, respectively. We also demonstrate, for the first time, the capability to detect sub-resolution contrast in compression OCE, i.e., changes in strain occurring within the strain axial resolution, and how this contrast varies between the different strain estimation methods. Lastly, we compare the performance of the three strain estimation methods on mouse skeletal muscle and human breast tissue and demonstrate that WLSFPU avoids strain imaging artifacts resulting from phase unwrapping errors in WLSWPU and provides improved contrast over the other two methods.
© 2022 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement.

Entities:  

Year:  2022        PMID: 35519281      PMCID: PMC9045929          DOI: 10.1364/BOE.447340

Source DB:  PubMed          Journal:  Biomed Opt Express        ISSN: 2156-7085            Impact factor:   3.562


  48 in total

1.  Dehydration effect on the mechanical behaviour of biological soft tissues: observations on kidney tissues.

Authors:  S Nicolle; J-F Palierne
Journal:  J Mech Behav Biomed Mater       Date:  2010-07-27

2.  Longitudinal shear waves for elastic characterization of tissues in optical coherence elastography.

Authors:  Fernando Zvietcovich; Gary R Ge; Humberto Mestre; Michael Giannetto; Maiken Nedergaard; Jannick P Rolland; Kevin J Parker
Journal:  Biomed Opt Express       Date:  2019-07-01       Impact factor: 3.732

3.  Analysis of spatial resolution in phase-sensitive compression optical coherence elastography.

Authors:  Matt S Hepburn; Philip Wijesinghe; Lixin Chin; Brendan F Kennedy
Journal:  Biomed Opt Express       Date:  2019-02-28       Impact factor: 3.732

4.  Optimized phase gradient measurements and phase-amplitude interplay in optical coherence elastography.

Authors:  Vladimir Y Zaitsev; Alexander L Matveyev; Lev A Matveev; Grigory V Gelikonov; Aleksandr A Sovetsky; Alex Vitkin
Journal:  J Biomed Opt       Date:  2016-11-01       Impact factor: 3.170

5.  Wide-field optical coherence micro-elastography for intraoperative assessment of human breast cancer margins.

Authors:  Wes M Allen; Lixin Chin; Philip Wijesinghe; Rodney W Kirk; Bruce Latham; David D Sampson; Christobel M Saunders; Brendan F Kennedy
Journal:  Biomed Opt Express       Date:  2016-09-19       Impact factor: 3.732

6.  Optical coherence micro-elastography: mechanical-contrast imaging of tissue microstructure.

Authors:  Brendan F Kennedy; Robert A McLaughlin; Kelsey M Kennedy; Lixin Chin; Andrea Curatolo; Alan Tien; Bruce Latham; Christobel M Saunders; David D Sampson
Journal:  Biomed Opt Express       Date:  2014-06-09       Impact factor: 3.732

7.  Spatial localization of mechanical excitation affects spatial resolution, contrast, and contrast-to-noise ratio in acoustic radiation force optical coherence elastography.

Authors:  Nichaluk Leartprapun; Rishyashring R Iyer; Colin D Mackey; Steven G Adie
Journal:  Biomed Opt Express       Date:  2019-10-24       Impact factor: 3.732

8.  Cell-laden microengineered gelatin methacrylate hydrogels.

Authors:  Jason W Nichol; Sandeep T Koshy; Hojae Bae; Chang M Hwang; Seda Yamanlar; Ali Khademhosseini
Journal:  Biomaterials       Date:  2010-04-24       Impact factor: 12.479

9.  Spatial resolution in dynamic optical coherence elastography.

Authors:  Mitchell A Kirby; Kanheng Zhou; John J Pitre; Liang Gao; David Li; Ivan Pelivanov; Shaozhen Song; Chunhui Li; Zhihong Huang; Tueng Shen; Ruikang Wang; Matthew O'Donnell
Journal:  J Biomed Opt       Date:  2019-09       Impact factor: 3.170

10.  Quantitative micro-elastography: imaging of tissue elasticity using compression optical coherence elastography.

Authors:  Kelsey M Kennedy; Lixin Chin; Robert A McLaughlin; Bruce Latham; Christobel M Saunders; David D Sampson; Brendan F Kennedy
Journal:  Sci Rep       Date:  2015-10-27       Impact factor: 4.379

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  1 in total

1.  Nonlinear Elasticity Assessment with Optical Coherence Elastography for High-Selectivity Differentiation of Breast Cancer Tissues.

Authors:  Ekaterina V Gubarkova; Aleksander A Sovetsky; Lev A Matveev; Aleksander L Matveyev; Dmitry A Vorontsov; Anton A Plekhanov; Sergey S Kuznetsov; Sergey V Gamayunov; Alexey Y Vorontsov; Marina A Sirotkina; Natalia D Gladkova; Vladimir Y Zaitsev
Journal:  Materials (Basel)       Date:  2022-05-05       Impact factor: 3.748

  1 in total

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