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dc.contributor.authorBliznakova, K.
dc.contributor.authorSuryanarayanan, Sankararaman
dc.contributor.authorKarellas, Andrew
dc.contributor.authorPallikarakis, N.
dc.date2022-08-11T08:10:50.000
dc.date.accessioned2022-08-23T17:21:37Z
dc.date.available2022-08-23T17:21:37Z
dc.date.issued2010-11-01
dc.date.submitted2014-12-23
dc.identifier.citationMed Phys. 2010 Nov;37(11):5604-17. doi: 10.1118/1.3491812. <a href="http://dx.doi.org/10.1118/1.3491812">Link to article on publisher's website</a>
dc.identifier.issn0094-2405 (Linking)
dc.identifier.doi10.1118/1.3491812
dc.identifier.pmid21158272
dc.identifier.urihttp://hdl.handle.net/20.500.14038/48562
dc.description.abstractPURPOSE: This work presents an improved algorithm for the generation of 3D breast software phantoms and its evaluation for mammography. METHODS: The improved methodology has evolved from a previously presented 3D noncompressed breast modeling method used for the creation of breast models of different size, shape, and composition. The breast phantom is composed of breast surface, duct system and terminal ductal lobular units, Cooper's ligaments, lymphatic and blood vessel systems, pectoral muscle, skin, 3D mammographic background texture, and breast abnormalities. The key improvement is the development of a new algorithm for 3D mammographic texture generation. Simulated images of the enhanced 3D breast model without lesions were produced by simulating mammographic image acquisition and were evaluated subjectively and quantitatively. For evaluation purposes, a database with regions of interest taken from simulated and real mammograms was created. Four experienced radiologists participated in a visual subjective evaluation trial, as they judged the quality of the simulated mammograms, using the new algorithm compared to mammograms, obtained with the old modeling approach. In addition, extensive quantitative evaluation included power spectral analysis and calculation of fractal dimension, skewness, and kurtosis of simulated and real mammograms from the database. RESULTS: The results from the subjective evaluation strongly suggest that the new methodology for mammographic breast texture creates improved breast models compared to the old approach. Calculated parameters on simulated images such as beta exponent deducted from the power law spectral analysis and fractal dimension are similar to those calculated on real mammograms. The results for the kurtosis and skewness are also in good coincidence with those calculated from clinical images. Comparison with similar calculations published in the literature showed good agreement in the majority of cases. CONCLUSIONS: The improved methodology generated breast models with increased realism compared to the older model as shown in evaluations of simulated images by experienced radiologists. It is anticipated that the realism will be further improved using an advanced image simulator so that simulated images may be used in feasibility studies in mammography.
dc.language.isoen_US
dc.relation<a href="http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?db=pubmed&cmd=Retrieve&list_uids=21158272&dopt=Abstract">Link to Article in PubMed</a>
dc.relation.urlhttp://www.ncbi.nlm.nih.gov/pmc/articles/PMC2967417/
dc.subjectAlgorithms
dc.subjectBreast
dc.subjectBreast Neoplasms
dc.subjectComputer Simulation
dc.subjectFemale
dc.subjectFractals
dc.subjectHumans
dc.subjectImage Processing, Computer-Assisted
dc.subjectMammography
dc.subjectModels, Statistical
dc.subjectNormal Distribution
dc.subjectPhantoms, Imaging
dc.subjectRadiation Oncology
dc.subjectRegression Analysis
dc.subjectSoftware
dc.subjectBiological and Chemical Physics
dc.subjectDiagnosis
dc.subjectEquipment and Supplies
dc.subjectInvestigative Techniques
dc.subjectMedical Biophysics
dc.subjectNeoplasms
dc.subjectRadiology
dc.titleEvaluation of an improved algorithm for producing realistic 3D breast software phantoms: application for mammography
dc.typeJournal Article
dc.source.journaltitleMedical physics
dc.source.volume37
dc.source.issue11
dc.identifier.legacycoverpagehttps://escholarship.umassmed.edu/radiology_pubs/66
dc.identifier.contextkey6488685
html.description.abstract<p>PURPOSE: This work presents an improved algorithm for the generation of 3D breast software phantoms and its evaluation for mammography.</p> <p>METHODS: The improved methodology has evolved from a previously presented 3D noncompressed breast modeling method used for the creation of breast models of different size, shape, and composition. The breast phantom is composed of breast surface, duct system and terminal ductal lobular units, Cooper's ligaments, lymphatic and blood vessel systems, pectoral muscle, skin, 3D mammographic background texture, and breast abnormalities. The key improvement is the development of a new algorithm for 3D mammographic texture generation. Simulated images of the enhanced 3D breast model without lesions were produced by simulating mammographic image acquisition and were evaluated subjectively and quantitatively. For evaluation purposes, a database with regions of interest taken from simulated and real mammograms was created. Four experienced radiologists participated in a visual subjective evaluation trial, as they judged the quality of the simulated mammograms, using the new algorithm compared to mammograms, obtained with the old modeling approach. In addition, extensive quantitative evaluation included power spectral analysis and calculation of fractal dimension, skewness, and kurtosis of simulated and real mammograms from the database.</p> <p>RESULTS: The results from the subjective evaluation strongly suggest that the new methodology for mammographic breast texture creates improved breast models compared to the old approach. Calculated parameters on simulated images such as beta exponent deducted from the power law spectral analysis and fractal dimension are similar to those calculated on real mammograms. The results for the kurtosis and skewness are also in good coincidence with those calculated from clinical images. Comparison with similar calculations published in the literature showed good agreement in the majority of cases.</p> <p>CONCLUSIONS: The improved methodology generated breast models with increased realism compared to the older model as shown in evaluations of simulated images by experienced radiologists. It is anticipated that the realism will be further improved using an advanced image simulator so that simulated images may be used in feasibility studies in mammography.</p>
dc.identifier.submissionpathradiology_pubs/66
dc.contributor.departmentDepartment of Radiology
dc.source.pages5604-17


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