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Research ArticleADULT BRAIN

A Semiautomatic Method for Multiple Sclerosis Lesion Segmentation on Dual-Echo MR Imaging: Application in a Multicenter Context

L. Storelli, E. Pagani, M.A. Rocca, M.A. Horsfield, A. Gallo, A. Bisecco, M. Battaglini, N. De Stefano, H. Vrenken, D.L. Thomas, L. Mancini, S. Ropele, C. Enzinger, P. Preziosa and M. Filippi
American Journal of Neuroradiology November 2016, 37 (11) 2043-2049; DOI: https://doi.org/10.3174/ajnr.A4874
L. Storelli
aFrom the Neuroimaging Research Unit (L.S., E.P., M.A.R., P.P., M.F.)
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E. Pagani
aFrom the Neuroimaging Research Unit (L.S., E.P., M.A.R., P.P., M.F.)
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M.A. Rocca
aFrom the Neuroimaging Research Unit (L.S., E.P., M.A.R., P.P., M.F.)
bInstitute of Experimental Neurology, Division of Neuroscience, Department of Neurology (M.A.R., P.P., M.F.), San Raffaele Scientific Institute, Vita-Salute San Raffaele University, Milan, Italy
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M.A. Horsfield
cXinapse Systems (M.A.H.), Colchester, United Kingdom
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A. Gallo
dMRI Center “SUN-FISM” and Institute of Diagnosis and Care “Hermitage-Capodimonte” (A.G., A.B.)
eI Division of Neurology, Department of Medical, Surgical, Neurological, Metabolic and Aging Sciences (A.G., A.B.), Second University of Naples, Naples, Italy
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A. Bisecco
dMRI Center “SUN-FISM” and Institute of Diagnosis and Care “Hermitage-Capodimonte” (A.G., A.B.)
eI Division of Neurology, Department of Medical, Surgical, Neurological, Metabolic and Aging Sciences (A.G., A.B.), Second University of Naples, Naples, Italy
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M. Battaglini
fDepartment of Neurological and Behavioral Sciences (M.B., N.D.S.), University of Siena, Italy
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N. De Stefano
fDepartment of Neurological and Behavioral Sciences (M.B., N.D.S.), University of Siena, Italy
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H. Vrenken
gDepartment of Radiology and Nuclear Medicine, MS Centre Amsterdam (H.V.), VU Medical Centre, Amsterdam, the Netherlands
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D.L. Thomas
hNeuroradiological Academic Unit (D.L.T., L.M.), UCL Institute of Neurology, London, United Kingdom
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L. Mancini
hNeuroradiological Academic Unit (D.L.T., L.M.), UCL Institute of Neurology, London, United Kingdom
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S. Ropele
iDepartment of Neurology (S.R., C.E.)
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C. Enzinger
iDepartment of Neurology (S.R., C.E.)
jClinical Division of Neuroradiology, Vascular and Interventional Radiology, Department of Radiology (C.E.), Medical University of Graz, Austria.
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P. Preziosa
aFrom the Neuroimaging Research Unit (L.S., E.P., M.A.R., P.P., M.F.)
bInstitute of Experimental Neurology, Division of Neuroscience, Department of Neurology (M.A.R., P.P., M.F.), San Raffaele Scientific Institute, Vita-Salute San Raffaele University, Milan, Italy
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M. Filippi
aFrom the Neuroimaging Research Unit (L.S., E.P., M.A.R., P.P., M.F.)
bInstitute of Experimental Neurology, Division of Neuroscience, Department of Neurology (M.A.R., P.P., M.F.), San Raffaele Scientific Institute, Vita-Salute San Raffaele University, Milan, Italy
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Abstract

BACKGROUND AND PURPOSE: The automatic segmentation of MS lesions could reduce time required for image processing together with inter- and intraoperator variability for research and clinical trials. A multicenter validation of a proposed semiautomatic method for hyperintense MS lesion segmentation on dual-echo MR imaging is presented.

MATERIALS AND METHODS: The classification technique used is based on a region-growing approach starting from manual lesion identification by an expert observer with a final segmentation-refinement step. The method was validated in a cohort of 52 patients with relapsing-remitting MS, with dual-echo images acquired in 6 different European centers.

RESULTS: We found a mathematic expression that made the optimization of the method independent of the need for a training dataset. The automatic segmentation was in good agreement with the manual segmentation (dice similarity coefficient = 0.62 and root mean square error = 2 mL). Assessment of the segmentation errors showed no significant differences in algorithm performance between the different MR scanner manufacturers (P > .05).

CONCLUSIONS: The method proved to be robust, and no center-specific training of the algorithm was required, offering the possibility for application in a clinical setting. Adoption of the method should lead to improved reliability and less operator time required for image analysis in research and clinical trials in MS.

ABBREVIATIONS:

DE
dual-echo
PD
proton density
  • © 2016 by American Journal of Neuroradiology
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Cite this article
L. Storelli, E. Pagani, M.A. Rocca, M.A. Horsfield, A. Gallo, A. Bisecco, M. Battaglini, N. De Stefano, H. Vrenken, D.L. Thomas, L. Mancini, S. Ropele, C. Enzinger, P. Preziosa, M. Filippi
A Semiautomatic Method for Multiple Sclerosis Lesion Segmentation on Dual-Echo MR Imaging: Application in a Multicenter Context
American Journal of Neuroradiology Nov 2016, 37 (11) 2043-2049; DOI: 10.3174/ajnr.A4874

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A Semiautomatic Method for Multiple Sclerosis Lesion Segmentation on Dual-Echo MR Imaging: Application in a Multicenter Context
L. Storelli, E. Pagani, M.A. Rocca, M.A. Horsfield, A. Gallo, A. Bisecco, M. Battaglini, N. De Stefano, H. Vrenken, D.L. Thomas, L. Mancini, S. Ropele, C. Enzinger, P. Preziosa, M. Filippi
American Journal of Neuroradiology Nov 2016, 37 (11) 2043-2049; DOI: 10.3174/ajnr.A4874
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