Skip to main content
Erschienen in: Journal of Digital Imaging 3/2012

01.06.2012

Computerized Segmentation Method for Individual Calcifications Within Clustered Microcalcifications While Maintaining Their Shapes on Magnification Mammograms

verfasst von: Akiyoshi Hizukuri, Ryohei Nakayama, Nobuo Nakako, Hiroharu Kawanaka, Haruhiko Takase, Koji Yamamoto, Shinji Tsuruoka

Erschienen in: Journal of Imaging Informatics in Medicine | Ausgabe 3/2012

Einloggen, um Zugang zu erhalten

Abstract

In a computer-aided diagnosis (CADx) scheme for evaluating the likelihood of malignancy of clustered microcalcifications on mammograms, it is necessary to segment individual calcifications correctly. The purpose of this study was to develop a computerized segmentation method for individual calcifications with various sizes while maintaining their shapes in the CADx schemes. Our database consisted of 96 magnification mammograms with 96 clustered microcalcifications. In our proposed method, a mammogram image was decomposed into horizontal subimages, vertical subimages, and diagonal subimages for a second difference at scales 1 to 4 by using a filter bank. The enhanced subimages for nodular components (NCs) and the enhanced subimages for both nodular and linear components (NLCs) were obtained from analysis of a Hessian matrix composed of the pixel values in those subimages for the second difference at each scale. At each pixel, eight objective features were given by pixel values in the subimages for NCs at scales 1 to 4 and the subimages for NLCs at scales 1 to 4. An artificial neural network with the eight objective features was employed to enhance calcifications on magnification mammograms. Calcifications were finally segmented by applying a gray-level thresholding technique to the enhanced image for calcifications. With the proposed method, a sensitivity of calcifications within clustered microcalcifications and the number of false positives per image were 96.5% (603/625) and 1.69, respectively. The average shape accuracy for segmented calcifications was also 91.4%. The proposed method with high sensitivity of calcifications while maintaining their shapes would be useful in the CADx schemes.
Literatur
1.
Zurück zum Zitat Sickles EA: Mammographic features of early breast cancer. AJR AM J Roentgenol 143:461–464, 1984PubMed Sickles EA: Mammographic features of early breast cancer. AJR AM J Roentgenol 143:461–464, 1984PubMed
2.
Zurück zum Zitat Sickles EA, Mammographic features of 300 consecutive nonpalpable breast cancers, AJR AM J Roentgenol, 661–663 (1986). Sickles EA, Mammographic features of 300 consecutive nonpalpable breast cancers, AJR AM J Roentgenol, 661–663 (1986).
3.
Zurück zum Zitat Adler D.D., Helvie M.A., Mammographic biopsy recommendations, Current Opinion in Radiology, 123–129 (1992). Adler D.D., Helvie M.A., Mammographic biopsy recommendations, Current Opinion in Radiology, 123–129 (1992).
4.
Zurück zum Zitat Kopans DB: The positive predictive value of mammography. AJR AM J Roentgenol 158:521–526, 1992PubMed Kopans DB: The positive predictive value of mammography. AJR AM J Roentgenol 158:521–526, 1992PubMed
5.
Zurück zum Zitat Doi K, MacMahon H, Katsuragawa S, Nishikawa RM, Jiang Y: Computer-aided diagnosis in radiology: potential and pitfall. European J Radiology 31:97–109, 1999CrossRef Doi K, MacMahon H, Katsuragawa S, Nishikawa RM, Jiang Y: Computer-aided diagnosis in radiology: potential and pitfall. European J Radiology 31:97–109, 1999CrossRef
6.
Zurück zum Zitat Jiang Y, Nishikawa RM, Wolverton DE, Metz CE, Giger ML, Schmidt RA, Vyborny CJ, Doi K: Malignant and benign clustered microcalcifications: automated feature analysis and classification. Radiology 198:671–678, 1996PubMed Jiang Y, Nishikawa RM, Wolverton DE, Metz CE, Giger ML, Schmidt RA, Vyborny CJ, Doi K: Malignant and benign clustered microcalcifications: automated feature analysis and classification. Radiology 198:671–678, 1996PubMed
7.
Zurück zum Zitat Chan HP, Sahiner B, Petric N, Heavie MA, Lam KL, Adler DD, Goodsitt MM: Computerized classification of malignant and benign microcalcifications on mammograms: texture analysis using an artificial neural network. Phys Med Biol 42:549–567, 1997PubMedCrossRef Chan HP, Sahiner B, Petric N, Heavie MA, Lam KL, Adler DD, Goodsitt MM: Computerized classification of malignant and benign microcalcifications on mammograms: texture analysis using an artificial neural network. Phys Med Biol 42:549–567, 1997PubMedCrossRef
8.
Zurück zum Zitat Chan HP, Sahiner B, Lam KL, Petric N, Helvie MA, Goodsitt MM, Adler DD: Computerized analysis of mammographic microcalcifications in morphological and texture feature spaces. Medical Physics 25:2007–2019, 1998PubMedCrossRef Chan HP, Sahiner B, Lam KL, Petric N, Helvie MA, Goodsitt MM, Adler DD: Computerized analysis of mammographic microcalcifications in morphological and texture feature spaces. Medical Physics 25:2007–2019, 1998PubMedCrossRef
9.
Zurück zum Zitat Nakayama R, Uchiyama Y, Watanabe R, Katsuragawa S, Namba K, Doi K: Computer-aided diagnosis scheme for histological classification of clustered microcalcifications on magnification mammograms. Medical Physics 31:789–799, 2004PubMedCrossRef Nakayama R, Uchiyama Y, Watanabe R, Katsuragawa S, Namba K, Doi K: Computer-aided diagnosis scheme for histological classification of clustered microcalcifications on magnification mammograms. Medical Physics 31:789–799, 2004PubMedCrossRef
10.
Zurück zum Zitat Nakayama R, Watanabe R, Namba K, Takeda K, Yamamoto K, Katsuragawa S, Doi K: Computer-aided diagnosis scheme for identifying histological classification of clustered microcalcifications by use of follow-up magnification mammograms. Acad Radiol 13:1219–1228, 2006PubMedCrossRef Nakayama R, Watanabe R, Namba K, Takeda K, Yamamoto K, Katsuragawa S, Doi K: Computer-aided diagnosis scheme for identifying histological classification of clustered microcalcifications by use of follow-up magnification mammograms. Acad Radiol 13:1219–1228, 2006PubMedCrossRef
11.
Zurück zum Zitat Nakayama R, Watanabe R, Namba K, Takeda K, Yamamoto K, Katsuragawa S, Doi K: An improved computer-aided diagnosis scheme using the nearest neighbor criterion for determining histological classification of clustered microcalcifications. Methods Inf Med 46:716–722, 2007PubMed Nakayama R, Watanabe R, Namba K, Takeda K, Yamamoto K, Katsuragawa S, Doi K: An improved computer-aided diagnosis scheme using the nearest neighbor criterion for determining histological classification of clustered microcalcifications. Methods Inf Med 46:716–722, 2007PubMed
12.
Zurück zum Zitat Muramatsu C, Li Q, Schmidt R, Suzuki K, Shiraishi J, Newstead G, Doi K: Experimental determination of subjective similarity for pairs of clustered microcalcifications on mammograms: observer study results. Medical Physics 33:3460–3468, 2006PubMedCrossRef Muramatsu C, Li Q, Schmidt R, Suzuki K, Shiraishi J, Newstead G, Doi K: Experimental determination of subjective similarity for pairs of clustered microcalcifications on mammograms: observer study results. Medical Physics 33:3460–3468, 2006PubMedCrossRef
13.
Zurück zum Zitat Muramatsu C, Li Q, Schmidt RA, Shiraishi J, Suzuki K, Newstead GM, Doi K: Determination of subjective similarity for pairs of masses and pairs of clustered microcalcifications on mammograms: comparison of similarity ranking scores and absolute similarity ratings. Medical Physics 34:2890–2895, 2007PubMedCrossRef Muramatsu C, Li Q, Schmidt RA, Shiraishi J, Suzuki K, Newstead GM, Doi K: Determination of subjective similarity for pairs of masses and pairs of clustered microcalcifications on mammograms: comparison of similarity ranking scores and absolute similarity ratings. Medical Physics 34:2890–2895, 2007PubMedCrossRef
14.
Zurück zum Zitat Kopans DB: Breast Imaging, 2nd edition. Lippincott-Raven, New York, 1997 Kopans DB: Breast Imaging, 2nd edition. Lippincott-Raven, New York, 1997
15.
Zurück zum Zitat Shen L, Rangayyan RM, Desautels JEL: Application of shape analysis to mammographic calcifications. IEEE Trans Med Image 13:263–274, 1994CrossRef Shen L, Rangayyan RM, Desautels JEL: Application of shape analysis to mammographic calcifications. IEEE Trans Med Image 13:263–274, 1994CrossRef
16.
Zurück zum Zitat Muramatsu C, Li Q, Schmidt R, Shiraishi J, Doi K: Investigation of psychophysical similarity measures for selection of similar images in the diagnosis of clustered microcalcifications on mammograms. Medical Physics 35:5695–5702, 2008PubMedCrossRef Muramatsu C, Li Q, Schmidt R, Shiraishi J, Doi K: Investigation of psychophysical similarity measures for selection of similar images in the diagnosis of clustered microcalcifications on mammograms. Medical Physics 35:5695–5702, 2008PubMedCrossRef
17.
Zurück zum Zitat Nakayama R, Uchiyama Y, Yamamoto K, Watanabe R, Namba K: Computer-aided diagnosis scheme using a filter bank for detection of microcalcification clusters in mammograms. IEEE Trans Biomedical Engineering 53(2):273–283, 2006CrossRef Nakayama R, Uchiyama Y, Yamamoto K, Watanabe R, Namba K: Computer-aided diagnosis scheme using a filter bank for detection of microcalcification clusters in mammograms. IEEE Trans Biomedical Engineering 53(2):273–283, 2006CrossRef
18.
Zurück zum Zitat Zhang H, Foo SW: Computer aided detection of breast masses from digitized mammograms. IEICE E89-D(6):1955–1961, 2006 Zhang H, Foo SW: Computer aided detection of breast masses from digitized mammograms. IEICE E89-D(6):1955–1961, 2006
19.
Zurück zum Zitat Kass M, Witkin A, Terzopoulos D: Snake: active contour models. Int J Compu Vis 1:321–331, 1987CrossRef Kass M, Witkin A, Terzopoulos D: Snake: active contour models. Int J Compu Vis 1:321–331, 1987CrossRef
20.
Zurück zum Zitat Xu C and Prince J.L, “Gradient vector flow: A new external force for snakes.” in IEEE Proc. Conf. on Computer Vision and Pattern Recognition, 66–71 (1997). Xu C and Prince J.L, “Gradient vector flow: A new external force for snakes.” in IEEE Proc. Conf. on Computer Vision and Pattern Recognition, 66–71 (1997).
21.
Zurück zum Zitat Xu C, Prince JL: Snakes, shapes, and gradient vector flow. IEEE Trans Image Processing 7(3):359–369, 1998CrossRef Xu C, Prince JL: Snakes, shapes, and gradient vector flow. IEEE Trans Image Processing 7(3):359–369, 1998CrossRef
22.
Zurück zum Zitat Chucherd S, Rodtook A, Makhanov SS: Phase portrait analysis for multiresolution generalized gradient vector flow. IEICE E93-D(10):2822–2835, 2010 Chucherd S, Rodtook A, Makhanov SS: Phase portrait analysis for multiresolution generalized gradient vector flow. IEICE E93-D(10):2822–2835, 2010
23.
Zurück zum Zitat Cheng HD, Shan J, Ju W, Guo Y, Zhang L: Automated breast cancer detection and classification using ultrasound images. Pattern Recognition 43(1):299–317, 2010CrossRef Cheng HD, Shan J, Ju W, Guo Y, Zhang L: Automated breast cancer detection and classification using ultrasound images. Pattern Recognition 43(1):299–317, 2010CrossRef
24.
Zurück zum Zitat Tang J: A multi-direction gvf snake for the segmentation of skin cancer images. Pattern Recognit. 42(6):1172–1179, 2009CrossRef Tang J: A multi-direction gvf snake for the segmentation of skin cancer images. Pattern Recognit. 42(6):1172–1179, 2009CrossRef
25.
Zurück zum Zitat Caselles V, Catte F, Coll T, Dibos F: A geometric model for active contours. Numerische Mathematik 66:1–31, 1993CrossRef Caselles V, Catte F, Coll T, Dibos F: A geometric model for active contours. Numerische Mathematik 66:1–31, 1993CrossRef
26.
Zurück zum Zitat Duda RO, Hart PE, Stork DG: Pattern Classification. Wiley, New York, 2001, pp 282–349 Duda RO, Hart PE, Stork DG: Pattern Classification. Wiley, New York, 2001, pp 282–349
27.
Zurück zum Zitat Gonzales RC, Woods RE: Digital Image Processing, 2nd edition. Addison-Wesley, MA, 1992, pp 567–643 Gonzales RC, Woods RE: Digital Image Processing, 2nd edition. Addison-Wesley, MA, 1992, pp 567–643
28.
Zurück zum Zitat Chakraborty DP, Winter LHL: Free-response methodology: alternate analysis and a new observer- performance experiment. Radiology 174:873–881, 1990PubMed Chakraborty DP, Winter LHL: Free-response methodology: alternate analysis and a new observer- performance experiment. Radiology 174:873–881, 1990PubMed
29.
Zurück zum Zitat Johnson RA, Wichern DW: Applied Multivariate Statistical Analysis. Prentice-Hall, Englewood cliffs, 1992 Johnson RA, Wichern DW: Applied Multivariate Statistical Analysis. Prentice-Hall, Englewood cliffs, 1992
Metadaten
Titel
Computerized Segmentation Method for Individual Calcifications Within Clustered Microcalcifications While Maintaining Their Shapes on Magnification Mammograms
verfasst von
Akiyoshi Hizukuri
Ryohei Nakayama
Nobuo Nakako
Hiroharu Kawanaka
Haruhiko Takase
Koji Yamamoto
Shinji Tsuruoka
Publikationsdatum
01.06.2012
Verlag
Springer-Verlag
Erschienen in
Journal of Imaging Informatics in Medicine / Ausgabe 3/2012
Print ISSN: 2948-2925
Elektronische ISSN: 2948-2933
DOI
https://doi.org/10.1007/s10278-011-9420-z

Weitere Artikel der Ausgabe 3/2012

Journal of Digital Imaging 3/2012 Zur Ausgabe

Update Radiologie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.