Skip to main content
Erschienen in: Annals of Nuclear Medicine 11/2019

06.09.2019 | Original Article

Computer-aided detection of bone metastasis in bone scintigraphy images using parallelepiped classification method

verfasst von: Florina-Gianina Elfarra, Mihaela Antonina Calin, Sorin Viorel Parasca

Erschienen in: Annals of Nuclear Medicine | Ausgabe 11/2019

Einloggen, um Zugang zu erhalten

Abstract

Objective

Accurate diagnosis of metastatic tissue on bone scintigraphy images is of paramount importance in making treatment decisions. Although several automated systems have developed, more and better interpretation methods are still being sought. In the present study, a new modality for bone metastasis detection from bone scintigraphy images using parallelepiped classification (PC) as method for mapping the radionuclide distribution is presented.

Methods

Bone scintigraphy images from 12 patients with bone metastases were analyzed using the parallelepiped classifier that generated color maps of scintigraphic images. Seven classes of radionuclide accumulation have been identified and fed into machine learning software. The accuracy of the proposed method was evaluated by statistical measurements in a confusion matrix. Overall accuracy, producer’s and user’s accuracies and κ coefficient were computed from each confusion matrix associated with the individual case.

Results

The results revealed that the method is sufficiently precise to differentiate the metastatic bone from normal tissue (overall classification accuracy = 87.58 ± 2.25% and κ coefficient = 0.8367 ± 0.0252). The maps are easier to read (due to better contrast) and can detect even slightest differences in accumulation levels among pixels.

Conclusions

In conclusion, these preliminary data suggest that bone scintigraphy combined with PC method could play an important role in the detection of bone metastasis, allowing for an easier but correct interpretation of the images, with effects on the diagnosis accuracy and decision making on the treatment to be applied.
Literatur
1.
Zurück zum Zitat Coleman RE. (2001) Metastatic bone disease: clinical features, pathophysiology and treatment strategies. Cancer Treat Rev. 2001;27:165–76.CrossRefPubMed Coleman RE. (2001) Metastatic bone disease: clinical features, pathophysiology and treatment strategies. Cancer Treat Rev. 2001;27:165–76.CrossRefPubMed
6.
Zurück zum Zitat Doi K. Computer-aided diagnosis in medical imaging: historical review, current status and future potential. Comput Med Imaging Graph. 2007;31:198–21111.CrossRefPubMedPubMedCentral Doi K. Computer-aided diagnosis in medical imaging: historical review, current status and future potential. Comput Med Imaging Graph. 2007;31:198–21111.CrossRefPubMedPubMedCentral
7.
Zurück zum Zitat Taylor P, Potts HW. Computer aids and human second reading as interventions in screening mammography: two systematic reviews to compare effects on cancer detection and recall rate. Eur J Cancer. 2008;44:798–807.CrossRefPubMed Taylor P, Potts HW. Computer aids and human second reading as interventions in screening mammography: two systematic reviews to compare effects on cancer detection and recall rate. Eur J Cancer. 2008;44:798–807.CrossRefPubMed
8.
Zurück zum Zitat Suzuki K. A supervised 'lesion-enhancement' filter by use of a massive-training artificial neural network (MTANN) in computer-aided diagnosis (CAD). Phys Med Biol. 2009;54:31–45.CrossRef Suzuki K. A supervised 'lesion-enhancement' filter by use of a massive-training artificial neural network (MTANN) in computer-aided diagnosis (CAD). Phys Med Biol. 2009;54:31–45.CrossRef
9.
Zurück zum Zitat Petrick N, Haider M, Summers RM, Yeshwant SC, Brown L, Iuliano EM, Louie A, Choi JR, Pickhardt PJ. CT colonography with computer-aided detection as a second reader: observer performance study. Radiology. 2008;246:148–56.CrossRefPubMed Petrick N, Haider M, Summers RM, Yeshwant SC, Brown L, Iuliano EM, Louie A, Choi JR, Pickhardt PJ. CT colonography with computer-aided detection as a second reader: observer performance study. Radiology. 2008;246:148–56.CrossRefPubMed
12.
Zurück zum Zitat Dong ZC. Detection of subjects and brain regions related to Alzheimer's disease using 3D MRI scans based on eigenbrain and machine learning. Front Comput Neurosci. 2015;66:1–15. Dong ZC. Detection of subjects and brain regions related to Alzheimer's disease using 3D MRI scans based on eigenbrain and machine learning. Front Comput Neurosci. 2015;66:1–15.
13.
Zurück zum Zitat Erdi YE, Humm JL, Imbriaco M, Yeung H, Larson SM. Quantitative bone metastases analysis based on image segmentation. J Nucl Med. 1997;38:1401–6.PubMed Erdi YE, Humm JL, Imbriaco M, Yeung H, Larson SM. Quantitative bone metastases analysis based on image segmentation. J Nucl Med. 1997;38:1401–6.PubMed
14.
Zurück zum Zitat Yin TK, Chiu NT. A computer-aided diagnosis for locating abnormalities in bone scintigraphy by a fuzzy system with a three-step minimization approach. IEEE Trans Med Imaging. 2004;23:639–54.CrossRefPubMed Yin TK, Chiu NT. A computer-aided diagnosis for locating abnormalities in bone scintigraphy by a fuzzy system with a three-step minimization approach. IEEE Trans Med Imaging. 2004;23:639–54.CrossRefPubMed
15.
Zurück zum Zitat Sajn L, Kukar M, Kononenko I, Milcinski M. Computerized segmentation of whole-body bone scintigrams and its use in automated diagnostics. Comput Methods Progr Biomed. 2005;80:47–55.CrossRef Sajn L, Kukar M, Kononenko I, Milcinski M. Computerized segmentation of whole-body bone scintigrams and its use in automated diagnostics. Comput Methods Progr Biomed. 2005;80:47–55.CrossRef
16.
Zurück zum Zitat Sadik M, Hamadeh I, Nordblom P, Suurkula M, Hoglund P, Ohlsson M, Edenbrandt L. Computer-assisted interpretation of planar whole-body bone scans. J Nucl Med. 2008;49:1958–65.CrossRefPubMed Sadik M, Hamadeh I, Nordblom P, Suurkula M, Hoglund P, Ohlsson M, Edenbrandt L. Computer-assisted interpretation of planar whole-body bone scans. J Nucl Med. 2008;49:1958–65.CrossRefPubMed
17.
Zurück zum Zitat Kikuchi A, Onoguchi M, Horikoshi H, Sjostrand K, Edenbrandt L. Automated segmentation of the skeleton in whole-body bone scans: influence of difference in atlas. Nucl Med Commun. 2012;3:947–53.CrossRef Kikuchi A, Onoguchi M, Horikoshi H, Sjostrand K, Edenbrandt L. Automated segmentation of the skeleton in whole-body bone scans: influence of difference in atlas. Nucl Med Commun. 2012;3:947–53.CrossRef
18.
Zurück zum Zitat Horikoshi H, Kikuchi A, Onoguchi M, Sjostrand K, Edenbrandt L. Computer-aided diagnosis system for bone scintigrams from Japanese patients: importance of training database. Ann Nucl Med. 2012;3:622–6.CrossRef Horikoshi H, Kikuchi A, Onoguchi M, Sjostrand K, Edenbrandt L. Computer-aided diagnosis system for bone scintigrams from Japanese patients: importance of training database. Ann Nucl Med. 2012;3:622–6.CrossRef
19.
Zurück zum Zitat Koizumi M, Miyaji N, Murata T, Motegi K, Miwa K, Koyama M, Terauchi T, Wagatsuma K, Kawakami K, Richter J. Evaluation of a revised version of computer-assisted diagnosis system, BONENAVI version 2.1.7, for bone scintigraphy in cancer patients. Ann Nucl Med. 2015;29:659–65.CrossRefPubMed Koizumi M, Miyaji N, Murata T, Motegi K, Miwa K, Koyama M, Terauchi T, Wagatsuma K, Kawakami K, Richter J. Evaluation of a revised version of computer-assisted diagnosis system, BONENAVI version 2.1.7, for bone scintigraphy in cancer patients. Ann Nucl Med. 2015;29:659–65.CrossRefPubMed
21.
Zurück zum Zitat Kuwahara M, Hachimura K, Ehiu S, Kinoshita M. Processing of riangiocardiographic images. Digit Process Biomed Images N Y. 1976;1980:187–203.CrossRef Kuwahara M, Hachimura K, Ehiu S, Kinoshita M. Processing of riangiocardiographic images. Digit Process Biomed Images N Y. 1976;1980:187–203.CrossRef
22.
Zurück zum Zitat Schowengerdt RA. Remote sensing: models and methods for image processing. 3rd ed. San Diego: Academic Press; 1997. p. 411–412. Schowengerdt RA. Remote sensing: models and methods for image processing. 3rd ed. San Diego: Academic Press; 1997. p. 411–412.
23.
Zurück zum Zitat Cohen J. A coefficient of agreement for nominal scales. Educ Psychol Meas. 1960;20:37–46.CrossRef Cohen J. A coefficient of agreement for nominal scales. Educ Psychol Meas. 1960;20:37–46.CrossRef
24.
Zurück zum Zitat Landis JR, Koch GG. The measurement of observer agreement for categorical data. Biometrics. 1997;33:159–74.CrossRef Landis JR, Koch GG. The measurement of observer agreement for categorical data. Biometrics. 1997;33:159–74.CrossRef
Metadaten
Titel
Computer-aided detection of bone metastasis in bone scintigraphy images using parallelepiped classification method
verfasst von
Florina-Gianina Elfarra
Mihaela Antonina Calin
Sorin Viorel Parasca
Publikationsdatum
06.09.2019
Verlag
Springer Singapore
Erschienen in
Annals of Nuclear Medicine / Ausgabe 11/2019
Print ISSN: 0914-7187
Elektronische ISSN: 1864-6433
DOI
https://doi.org/10.1007/s12149-019-01399-w

Weitere Artikel der Ausgabe 11/2019

Annals of Nuclear Medicine 11/2019 Zur Ausgabe