Literature DB >> 17822018

A post-reconstruction method to correct cupping artifacts in cone beam breast computed tomography.

M C Altunbas1, C C Shaw, L Chen, C Lai, X Liu, T Han, T Wang.   

Abstract

In cone beam breast computed tomography (CT), scattered radiation leads to nonuniform biasing of CT numbers known as a cupping artifact. Besides being visual distractions, cupping artifacts appear as background nonuniformities, which impair efficient gray scale windowing and pose a problem in threshold based volume visualization/segmentation. To overcome this problem, we have developed a background nonuniformity correction method specifically designed for cone beam breast CT. With this technique, the cupping artifact is modeled as an additive background signal profile in the reconstructed breast images. Due to the largely circularly symmetric shape of a typical breast, the additive background signal profile was also assumed to be circularly symmetric. The radial variation of the background signals was estimated by measuring the spatial variation of adipose tissue signals in front view breast images. To extract adipose tissue signals in an automated manner, a signal sampling scheme in polar coordinates and a background trend fitting algorithm were implemented. The background fits compared with targeted adipose tissue signal value (constant throughout the breast volume) to get an additive correction value for each tissue voxel. To test the accuracy, we applied the technique to cone beam CT images of mastectomy specimens. After correction, the images demonstrated significantly improved signal uniformity in both front and side view slices. The reduction of both intraslice and interslice variations in adipose tissue CT numbers supported our observations.

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Year:  2007        PMID: 17822018      PMCID: PMC1995653          DOI: 10.1118/1.2748106

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


  10 in total

1.  Cone-beam computed tomography with a flat-panel imager: magnitude and effects of x-ray scatter.

Authors:  J H Siewerdsen; D A Jaffray
Journal:  Med Phys       Date:  2001-02       Impact factor: 4.071

2.  Dedicated breast CT: radiation dose and image quality evaluation.

Authors:  J M Boone; T R Nelson; K K Lindfors; J A Seibert
Journal:  Radiology       Date:  2001-12       Impact factor: 11.105

3.  Microcalcification detection using cone-beam CT mammography with a flat-panel imager.

Authors:  Xing Gong; Aruna A Vedula; Stephen J Glick
Journal:  Phys Med Biol       Date:  2004-06-07       Impact factor: 3.609

4.  The influence of antiscatter grids on soft-tissue detectability in cone-beam computed tomography with flat-panel detectors.

Authors:  J H Siewerdsen; D J Moseley; B Bakhtiar; S Richard; D A Jaffray
Journal:  Med Phys       Date:  2004-12       Impact factor: 4.071

5.  Evaluation of x-ray scatter properties in a dedicated cone-beam breast CT scanner.

Authors:  Alexander L C Kwan; John M Boone; Nikula Shah
Journal:  Med Phys       Date:  2005-09       Impact factor: 4.071

6.  An Accurate Scatter Measurement and Correction Technique for Cone Beam Breast CT Imaging Using Scanning Sampled Measurement (SSM) Technique.

Authors:  Xinming Liu; Chris C Shaw; Tianpeng Wang; Lingyun Chen; Mustafa C Altunbas; S Cheenu Kappadath
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2006-02-28

7.  A general approach for multidimensional smoothing.

Authors:  X Pan
Journal:  Med Phys       Date:  1998-04       Impact factor: 4.071

8.  Cone-beam volume CT breast imaging: feasibility study.

Authors:  Biao Chen; Ruola Ning
Journal:  Med Phys       Date:  2002-05       Impact factor: 4.071

9.  A simple, direct method for x-ray scatter estimation and correction in digital radiography and cone-beam CT.

Authors:  J H Siewerdsen; M J Daly; B Bakhtiar; D J Moseley; S Richard; H Keller; D A Jaffray
Journal:  Med Phys       Date:  2006-01       Impact factor: 4.071

10.  Breast cancer risk factors in relation to breast density (United States).

Authors:  Linda Titus-Ernstoff; Anna N A Tosteson; Claudia Kasales; Julia Weiss; Martha Goodrich; Elizabeth E Hatch; Patricia A Carney
Journal:  Cancer Causes Control       Date:  2006-12       Impact factor: 2.506

  10 in total
  25 in total

1.  An analysis of the mechanical parameters used for finite element compression of a high-resolution 3D breast phantom.

Authors:  Christina M L Hsu; Mark L Palmeri; W Paul Segars; Alexander I Veress; James T Dobbins
Journal:  Med Phys       Date:  2011-10       Impact factor: 4.071

2.  Dosimetric characterization of a dedicated breast computed tomography clinical prototype.

Authors:  Ioannis Sechopoulos; Steve Si Jia Feng; Carl J D'Orsi
Journal:  Med Phys       Date:  2010-08       Impact factor: 4.071

3.  A general method for cupping artifact correction of cone-beam breast computed tomography images.

Authors:  Xiaolei Qu; Chao-Jen Lai; Yuncheng Zhong; Ying Yi; Chris C Shaw
Journal:  Int J Comput Assist Radiol Surg       Date:  2015-10-29       Impact factor: 2.924

4.  Population of 224 realistic human subject-based computational breast phantoms.

Authors:  David W Erickson; Jered R Wells; Gregory M Sturgeon; Ehsan Samei; James T Dobbins; W Paul Segars; Joseph Y Lo
Journal:  Med Phys       Date:  2016-01       Impact factor: 4.071

5.  X-ray scatter correction method for dedicated breast computed tomography.

Authors:  Ioannis Sechopoulos
Journal:  Med Phys       Date:  2012-05       Impact factor: 4.071

6.  Penalized maximum likelihood reconstruction for improved microcalcification detection in breast tomosynthesis.

Authors:  Mini Das; Howard C Gifford; J Michael O'Connor; Stephen J Glick
Journal:  IEEE Trans Med Imaging       Date:  2010-10-28       Impact factor: 10.048

7.  Methodology for generating a 3D computerized breast phantom from empirical data.

Authors:  Christina M Li; W Paul Segars; Georgia D Tourassi; John M Boone; James T Dobbins
Journal:  Med Phys       Date:  2009-07       Impact factor: 4.071

Review 8.  Artefacts in CBCT: a review.

Authors:  R Schulze; U Heil; D Gross; D D Bruellmann; E Dranischnikow; U Schwanecke; E Schoemer
Journal:  Dentomaxillofac Radiol       Date:  2011-07       Impact factor: 2.419

9.  Transmission characteristics of a two dimensional antiscatter grid prototype for CBCT.

Authors:  Cem Altunbas; Brian Kavanagh; Timur Alexeev; Moyed Miften
Journal:  Med Phys       Date:  2017-06-16       Impact factor: 4.071

Review 10.  Breast cancer imaging: a perspective for the next decade.

Authors:  Andrew Karellas; Srinivasan Vedantham
Journal:  Med Phys       Date:  2008-11       Impact factor: 4.071

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