21.11.2.1 Fuzzy C-Means for Segmentation of MRI Data

Chapter Contents (Back)
Magnetic Resonance. MRI. Segmentation. Fuzzy C-Means. MRI Segmentation.

Pham, D.L.[Dzung L.], Prince, J.L.[Jerry L.],
An adaptive fuzzy C-means algorithm for image segmentation in the presence of intensity inhomogeneities,
PRL(20), No. 1, January 1999, pp. 57-68. BibRef 9901

Pham, D.L., Prince, J.L.,
Adaptive fuzzy segmentation of magnetic resonance images,
MedImg(18), No. 9, September 1999, pp. 737-752.
IEEE Top Reference. 0110
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Pham, D.L.[Dzung L.],
Fuzzy Fractal Analysis of Molecular Imaging Data,
PIEEE(96), No. 8, August 2008, pp. 1332-1347.
IEEE DOI 0804
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Pham, D.L.[Dzung L.],
Spatial Models for Fuzzy Clustering,
CVIU(84), No. 2, November 2001, pp. 285-297.
DOI Link 0203
BibRef
Earlier:
Fuzzy clustering with spatial constraints,
ICIP02(II: 65-68).
IEEE DOI 0210
BibRef
Earlier:
Edge-adaptive Clustering for Unsupervised Image Segmentation,
ICIP00(Vol I: 816-819).
IEEE DOI 0008
BibRef

Hiltner, J., Fathi, M., Reusch, B.,
An approach to use linguistic and model-based fuzzy expert knowledge for the analysis of MRT images,
IVC(19), No. 4, March 2001, pp. 195-206.
Elsevier DOI 0102
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And: Erratum: IVC(19), No. 13, November 2001, pp. 1021.
Elsevier DOI 0111
BibRef

Ahmed, M.N., Yamany, S.M., Mohamed, N., Farag, A.A., Moriarty, T.,
A modified fuzzy C-means algorithm for bias field estimation and segmentation of MRI data,
MedImg(21), No. 3, March 2002, pp. 193-199.
IEEE Top Reference. 0205
BibRef

Ahmed, M.N., Yamany, S.M., Farag, A.A., Moriarty, T.,
Bias Field Estimation and Adaptive Segmentation of MRI Data Using a Modified Fuzzy C-Means Algorithm,
CVPR99(I: 250-255).
IEEE DOI BibRef 9900

Liew, A.W.C., Yan, H.[Hong],
An adaptive spatial fuzzy clustering algorithm for 3-D MR image segmentation,
MedImg(22), No. 9, September 2003, pp. 1063-1075.
IEEE Abstract. 0309
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Kannan, S.R.,
A New Clustering Algorith for Segmentation of Magnetic Resonance Images Using Fuzzy C-Mean and Computer Programming,
GVIP(05), No. V2, January 2005, pp. 17-23
HTML Version. BibRef 0501

Hung, W.L.[Wen-Liang], Yang, M.S.[Miin-Shen], Chen, D.H.[De-Hua],
Parameter selection for suppressed fuzzy c-means with an application to MRI segmentation,
PRL(27), No. 5, 1 April 2006, pp. 424-438.
Elsevier DOI Fuzzy clustering; Fuzzy c-means; Suppressed fuzzy c-means; Parameter selection; Magnetic resonance image segmentation 0604
BibRef

Hung, W.L.[Wen-Liang], Yang, M.S.[Miin-Shen], Chen, D.H.[De-Hua],
Bootstrapping approach to feature-weight selection in fuzzy c-means algorithms with an application in color image segmentation,
PRL(29), No. 9, 1 July 2008, pp. 1317-1325.
Elsevier DOI 0711
Fuzzy clustering; Fuzzy c-means; Weighted fuzzy c-means; Bootstrap; Variation; Color image segmentation BibRef

Awate, S.P., Zhang, H., Gee, J.C.,
A Fuzzy, Nonparametric Segmentation Framework for DTI and MRI Analysis: With Applications to DTI-Tract Extraction,
MedImg(26), No. 11, November 2007, pp. 1525-1536.
IEEE DOI 0709
BibRef

Qiu, C.Y.[Cun-Yong], Xiao, J.[Jian], Yu, L.[Long], Han, L.[Lu], Iqbal, M.N.[Muhammad Naveed],
A modified interval type-2 fuzzy C-means algorithm with application in MR image segmentation,
PRL(34), No. 12, 1 September 2013, pp. 1329-1338.
Elsevier DOI 1306
Image segmentation; Magnetic resonance imaging; Fuzzy C-means; Interval type-2 fuzzy sets BibRef

Qiu, C.Y.[Cun-Yong], Xiao, J.[Jian], Han, L.[Lu], Iqbal, M.N.[Muhammad Naveed],
Enhanced interval type-2 fuzzy c-means algorithm with improved initial center,
PRL(38), No. 1, 2014, pp. 86-92.
Elsevier DOI 1402
Fuzzy clustering BibRef

Nongmeikapam, K.[Kishorjit], Kumar, W.K.[Wahengbam Kanan], Singh, A.D.[Aheibam Dinamani],
Fast and Automatically Adjustable GRBF Kernel Based Fuzzy C-Means for Cluster-wise Coloured Feature Extraction and Segmentation of MR Images,
IET-IPR(12), No. 4, April 2018, pp. 513-524.
DOI Link 1804
BibRef

Vigneshwaran, S., Govindaraj, V.[Vishnuvarthanan], Murugan, P.R.[Pallikonda R.], Zhang, Y.D.[Yu-Dong], Prasath, T.A.[Thiyagarajan Arun],
Unsupervised learning-based clustering approach for smart identification of pathologies and segmentation of tissues in brain magnetic resonance imaging,
IJIST(29), No. 4, 2019, pp. 439-456.
DOI Link 1911
medical image analysis, modified fuzzy K-means, self-organizing map, tissue segmentation, tumors and lesion identification BibRef


Al-Dmour, H.[Hayat], Al-Ani, A.[Ahmed],
MR Brain Tissue Segmentation Based on Clustering Techniques and Neural Network,
CIAP17(II:225-233).
Springer DOI 1711
BibRef
Earlier:
MR Brain Image Segmentation Based on Unsupervised and Semi-Supervised Fuzzy Clustering Methods,
DICTA16(1-7)
IEEE DOI 1701
Biomedical imaging BibRef

Adhikari, S.K., Sing, J.K., Basu, D.K., Nasipuri, M.,
A spatial fuzzy C-means algorithm with application to MRI image segmentation,
ICAPR15(1-6)
IEEE DOI 1511
biomedical MRI BibRef

Aparajeeta, J., Nanda, P.K., Das, N.,
Bias field estimation and segmentation of MR image using modified fuzzy-C means algorithms,
ICAPR15(1-6)
IEEE DOI 1511
biomedical MRI BibRef

Imamoglu, N.[Nevrez], Gomez-Tames, J.[Jose], He, S.[Siyu], Gu, D.Y.[Dong-Yun], Kita, K.[Kahori], Yu, W.W.[Wen-Wei],
Unsupervised muscle region extraction by fuzzy decision based saliency feature integration on thigh MRI for 3D modeling,
MVA15(150-153)
IEEE DOI 1507
Feature extraction BibRef

Kinani, J.M.V.[J.M. Vianney], Rosales-Silva, A.J., Gallegos-Funes, F.J., Arellano, A.,
Fuzzy C-means applied to MRI images for an automatic lesion detection using image enhancement and constrained clustering,
IPTA14(1-7)
IEEE DOI 1503
biomedical MRI BibRef

Selvathi, D., Dhivya, R.,
Segmentation of tissues in MR images using Modified Spatial Fuzzy C Means algorithm,
ICSIPR13(136-140).
IEEE DOI 1304
BibRef

Ray, D.[Dipankar], Majumder, D.D.[D. Dutta],
Development of a Neuro-fuzzy MR Image Segmentation Approach Using Fuzzy C-Means and Recurrent Neural Network,
PReMI09(128-133).
Springer DOI 0912
BibRef

Kobashi, S., Takae, T., Kitamura, Y., Hata, Y., Yanagida, T.,
Fuzzy Medical Image Processing for Segmenting the Lateral Ventricles from MR Images,
ICIP01(III: 1095-1098).
IEEE DOI 0108
BibRef

Xue, J.H.,
Fuzzy Modeling of Knowledge for MRI Brain Structure Segmentation,
ICIP00(Vol I: 617-620).
IEEE DOI 0008
BibRef

Lin, J.S., Cheng, K.S., Mao, C.W.,
A Modified Hopfield Neural Network with Fuzzy C-Means Technique for Multispectral MR Image Segmentation,
ICIP96(I: 327-330).
IEEE DOI BibRef 9600

Gath, I., Hoory, D.,
Detection of elliptic shells using fuzzy clustering: Application to MRI images,
ICPR94(B:251-255).
IEEE DOI 9410
BibRef

Chapter on Medical Applications, CAT, MRI, Ultrasound, Heart Models, Brain Models continues in
Magnetic Resonance Imaging, Registration, Alignment, Fusion .


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