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Updated: Jul 13, 2026

A MRI-Based Toolbox for Neurosurgical Planning in Nonhuman Primates
Published on: July 17, 2020
Statistical morphological skull stripping of adult and infant MRI data
John Chiverton1, Kevin Wells, Emma Lewis
1Centre for Vision, Speech and Signal Processing, School of Electronics and Physical Sciences, University of Surrey, Surrey, UK. j.chiverton@surrey.ac.uk
Abstract:
This paper describes a novel automatic statistical morphology skull stripper (SMSS) that uniquely exploits a statistical self-similarity measure and a 2-D brain mask to delineate the brain. The result of applying SMSS to 20 MRI data set volumes, including scans of both adult and infant subjects is also described. Quantitative performance assessment was undertaken with the use of brain masks provided by a brain segmentation expert. The performance is compared with an alternative technique known as brain extraction tool. The results suggest that SMSS is capable of skull-stripping neurological data with small amounts of over- and under-segmentation.
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