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Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected <t>SPM8-derived</t> segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).
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Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected <t>SPM8-derived</t> segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).
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Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected <t>SPM8-derived</t> segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).
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Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected <t>SPM8-derived</t> segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).
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Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected <t>SPM8-derived</t> segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).
Matlab Version 2009a, supplied by MathWorks Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected <t>SPM8-derived</t> segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).
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Image Search Results


Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected SPM8-derived segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).

Journal: Journal of Neuroimaging

Article Title: Quantification of Global Cerebral Atrophy in Multiple Sclerosis from 3T MRI Using SPM: The Role of Misclassification Errors

doi: 10.1111/jon.12194

Figure Lengend Snippet: Panels A and B show a representative slice of a raw axial MDEFT image before and after manual skull stripping in a patient with MS. Panel C shows the corresponding uncorrected SPM8-derived segmented images obtained for white matter (WM), gray matter (GM), and cerebrospinal fluid (CSF) tissue compartments; note the images from left to right show: underestimation of the volume of the putamen and thalamus (anterior arrows) and misclassification of T1 hypointensities in WM as GM (posterior arrows). Panel D shows the corresponding segmentations obtained for the same tissue dually corrected compartments (ie, after manually correcting both types of errors).

Article Snippet: Manually deskulled MDEFT images were brought into approximate alignment with the International Consortium for Brain Mapping template in SPM8 running in MATLAB (v. 2009a, The MathWorks Inc., Natick, MA, USA).

Techniques: Stripping Membranes, Derivative Assay