2014
DOI: 10.1007/s10278-014-9752-6
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Unsupervised Segmentation of Head Tissues from Multi-modal MR Images for EEG Source Localization

Abstract: In this paper, we present and evaluate an automatic unsupervised segmentation method, hierarchical segmentation approach (HSA)-Bayesian-based adaptive mean shift (BAMS), for use in the construction of a patient-specific head conductivity model for electroencephalography (EEG) source localization. It is based on a HSA and BAMS for segmenting the tissues from multi-modal magnetic resonance (MR) head images. The evaluation of the proposed method was done both directly in terms of segmentation accuracy and indirec… Show more

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Cited by 6 publications
(3 citation statements)
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“…The quantitative morphometric studies of MR brain images often require a preliminary processing to isolate the brain from extra-cranial or non-brain tissues from MRI head scans, commonly referred to as skull stripping [14][15][16][17]. Because the brain images that have preprocessed with automatic skull stripping eventually lead to get better segmentation of different brain regions which results for accurate diagnosis of various brainrelated diseases.…”
Section: Skull Stripping Of Mr Brain Imagesmentioning
confidence: 99%
“…The quantitative morphometric studies of MR brain images often require a preliminary processing to isolate the brain from extra-cranial or non-brain tissues from MRI head scans, commonly referred to as skull stripping [14][15][16][17]. Because the brain images that have preprocessed with automatic skull stripping eventually lead to get better segmentation of different brain regions which results for accurate diagnosis of various brainrelated diseases.…”
Section: Skull Stripping Of Mr Brain Imagesmentioning
confidence: 99%
“…Generally, two types of detection systems exist in an Alzheimer detection, one is Whole Brain based Detection (WBD) and the other is a Single Slice based Detection (SSD) [3]. The construction of a realistic model requires accurate segmentation of MRI tissue classes based on dissimilar conductivity values [4]. Whereas, the segmentation of brain includes five tissue classes: WM, GM, CSF, skull, and skin [5].…”
Section: Introductionmentioning
confidence: 99%
“…Since the manual segmentation is very time consuming and prone to errors, various methods have been developed to automatically remove extra-cerebral tissues without human intervention. Morphometric studies require a preprocessing procedure to isolate the brain from extra-cranial known as skull stripping [6][7][8][9]. Skull stripping ensures better segmentation and assures accurate diagnosis of brain diseases and probability of misclassification of abnormal tissues is also reduced.…”
Section: Introductionmentioning
confidence: 99%