Literature DB >> 20879582

Three-dimensional microwave imaging of realistic numerical breast phantoms via a multiple-frequency inverse scattering technique.

Jacob D Shea1, Panagiotis Kosmas, Susan C Hagness, Barry D Van Veen.   

Abstract

PURPOSE: Breast density measurement has the potential to play an important role in individualized breast cancer risk assessment and prevention decisions. Routine evaluation of breast density will require the availability of a low-cost, nonionizing, three-dimensional (3-D) tomographic imaging modality that exploits a strong properties contrast between dense fibroglandular tissue and less dense adipose tissue. The purpose of this computational study is to investigate the performance of 3-D tomography using low-power microwaves to reconstruct the spatial distribution of breast tissue dielectric properties and to evaluate the modality for application to breast density characterization.
METHODS: State-of-the-art 3-D numerical breast phantoms that are realistic in both structural and dielectric properties are employed. The test phantoms include one sample from each of four classes of mammographic breast density. Since the properties of these phantoms are known exactly, these testbeds serve as a rigorous benchmark for the imaging results. The distorted Born iterative imaging method is applied to simulated array measurements of the numerical phantoms. The forward solver in the imaging algorithm employs the finite-difference time-domain method of solving the time-domain Maxwell's equations, and the dielectric profiles are estimated using an integral equation form of the Helmholtz wave equation. A multiple-frequency, bound-constrained, vector field inverse scattering solution is implemented that enables practical inversion of the large-scale 3-D problem. Knowledge of the frequency-dependent characteristic of breast tissues at microwave frequencies is exploited to obtain a parametric reconstruction of the dispersive dielectric profile of the interior of the breast. Imaging is performed on a high-resolution voxel basis and the solution is bounded by a known range of dielectric properties of the constituent breast tissues. The imaging method is validated using a breast phantom with a single, high-contrast interior scattering target in an otherwise homogeneous interior. The method is then used to image a set of realistic numerical breast phantoms of varied fibroglandular tissue density.
RESULTS: Imaging results are presented for each numerical phantom and show robustness of the method relative to tissue density. In each case, the distribution of fibroglandular tissues is well represented in the resulting images. The resolution of the images at the frequencies employed is wider than the feature dimensions of the normal tissue structures, resulting in a smearing of their reconstruction.
CONCLUSIONS: The results of this study support the utility of 3-D microwave tomography for imaging the distribution of normal tissues in the breast, specifically, dense fibroglandular tissue versus less dense adipose tissue, and suggest that further investigation of its use for volumetric evaluation of breast density is warranted.

Entities:  

Mesh:

Year:  2010        PMID: 20879582      PMCID: PMC2921423          DOI: 10.1118/1.3443569

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  30 in total

1.  Three-dimensional microwave tomography: experimental prototype of the system and vector born reconstruction method.

Authors:  S Y Semenov; R H Svenson; A E Bulyshev; A E Souvorov; A G Nazarov; Y E Sizov; A V Pavlovsky; V Y Borisov; B A Voinov; G I Simonova; A N Starostin; V G Posukh; G P Tatsis; V Y Baranov
Journal:  IEEE Trans Biomed Eng       Date:  1999-08       Impact factor: 4.538

2.  Microwave breast imaging: 3-D forward scattering simulation.

Authors:  Zhong Qing Zhang; Qing Huo Liu; Chunjiang Xiao; Erika Ward; Gary Ybarra; William T Joines
Journal:  IEEE Trans Biomed Eng       Date:  2003-10       Impact factor: 4.538

3.  Initial clinical experience with microwave breast imaging in women with normal mammography.

Authors:  Paul M Meaney; Margaret W Fanning; Timothy Raynolds; Colleen J Fox; Qianqian Fang; Christine A Kogel; Steven P Poplack; Keith D Paulsen
Journal:  Acad Radiol       Date:  2007-02       Impact factor: 3.173

4.  Volumetric breast density estimation from full-field digital mammograms.

Authors:  Saskia van Engeland; Peter R Snoeren; Henkjan Huisman; Carla Boetes; Nico Karssemeijer
Journal:  IEEE Trans Med Imaging       Date:  2006-03       Impact factor: 10.048

5.  Breast surface estimation for radar-based breast imaging systems.

Authors:  Trevor C Williams; Jeff M Sill; Elise C Fear
Journal:  IEEE Trans Biomed Eng       Date:  2008-06       Impact factor: 4.538

6.  A large-scale study of the ultrawideband microwave dielectric properties of normal, benign and malignant breast tissues obtained from cancer surgeries.

Authors:  Mariya Lazebnik; Dijana Popovic; Leah McCartney; Cynthia B Watkins; Mary J Lindstrom; Josephine Harter; Sarah Sewall; Travis Ogilvie; Anthony Magliocco; Tara M Breslin; Walley Temple; Daphne Mew; John H Booske; Michal Okoniewski; Susan C Hagness
Journal:  Phys Med Biol       Date:  2007-10-01       Impact factor: 3.609

7.  Analysis of parenchymal density on mammograms in 1353 women 25-79 years old.

Authors:  P C Stomper; D J D'Souza; P A DiNitto; M A Arredondo
Journal:  AJR Am J Roentgenol       Date:  1996-11       Impact factor: 3.959

8.  Three-dimensional microwave breast imaging: dispersive dielectric properties estimation using patient-specific basis functions.

Authors:  David W Winters; Jacob D Shea; Panagiotis Kosmas; Barry D Van Veen; Susan C Hagness
Journal:  IEEE Trans Med Imaging       Date:  2009-02-10       Impact factor: 10.048

9.  A new method for quantitative analysis of mammographic density.

Authors:  Carri K Glide-Hurst; Neb Duric; Peter Littrup
Journal:  Med Phys       Date:  2007-11       Impact factor: 4.071

10.  Development of anatomically realistic numerical breast phantoms with accurate dielectric properties for modeling microwave interactions with the human breast.

Authors:  Earl Zastrow; Shakti K Davis; Mariya Lazebnik; Frederick Kelcz; Barry D Van Veen; Susan C Hagness
Journal:  IEEE Trans Biomed Eng       Date:  2008-12       Impact factor: 4.538

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  36 in total

1.  Multi-Band Miniaturized Patch Antennas for a Compact, Shielded Microwave Breast Imaging Array.

Authors:  Suzette M Aguilar; Mudar A Al-Joumayly; Matthew J Burfeindt; Nader Behdad; Susan C Hagness
Journal:  IEEE Trans Antennas Propag       Date:  2013-12-18       Impact factor: 4.388

2.  2-D Fused Image Reconstruction approach for Microwave Tomography: a theoretical assessment using FDTD Model.

Authors:  G Bindu; S Semenov
Journal:  Comput Methods Biomech Biomed Eng Imaging Vis       Date:  2013-01-01

3.  3-D Microwave Tomography Using the Soft Prior Regularization Technique: Evaluation in Anatomically Realistic MRI-Derived Numerical Breast Phantoms.

Authors:  Amir H Golnabi; Paul M Meaney; Shireen D Geimer; Keith D Paulsen
Journal:  IEEE Trans Biomed Eng       Date:  2019-01-10       Impact factor: 4.538

4.  3D parallel-detection microwave tomography for clinical breast imaging.

Authors:  N R Epstein; P M Meaney; K D Paulsen
Journal:  Rev Sci Instrum       Date:  2014-12       Impact factor: 1.523

5.  A 4-channel, vector network analyzer microwave imaging prototype based on software defined radio technology.

Authors:  Paul Meaney; Alexander Hartov; Selaka Bulumulla; Timothy Raynolds; Cynthia Davis; Florian Schoenberger; Sebastian Richter; Keith Paulsen
Journal:  Rev Sci Instrum       Date:  2019-04       Impact factor: 1.523

6.  3D printed PLA/copper bowtie antenna for biomedical imaging applications.

Authors:  Emine Avşar Aydın; Ahmet Refah Torun
Journal:  Phys Eng Sci Med       Date:  2020-08-31

7.  A TSVD analysis of microwave inverse scattering for breast imaging.

Authors:  Jacob D Shea; Barry D Van Veen; Susan C Hagness
Journal:  IEEE Trans Biomed Eng       Date:  2011-11-18       Impact factor: 4.538

8.  Microwave breast cancer detection using time-frequency representations.

Authors:  Hongchao Song; Yunpeng Li; Aidong Men
Journal:  Med Biol Eng Comput       Date:  2017-08-24       Impact factor: 2.602

9.  Dielectric characterization of PCL-based thermoplastic materials for microwave diagnostic and therapeutic applications.

Authors:  Suzette M Aguilar; Jacob D Shea; Mudar A Al-Joumayly; Barry D Van Veen; Nader Behdad; Susan C Hagness
Journal:  IEEE Trans Biomed Eng       Date:  2011-05-27       Impact factor: 4.538

10.  MRI-Derived 3-D-Printed Breast Phantom for Microwave Breast Imaging Validation.

Authors:  Matthew J Burfeindt; Timothy J Colgan; R Owen Mays; Jacob D Shea; Nader Behdad; Barry D Van Veen; Susan C Hagness
Journal:  IEEE Antennas Wirel Propag Lett       Date:  2012       Impact factor: 3.834

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