作者
WM Wells III, W Eric L Grimson, Ron Kikinis, Ferenc A Jolesz
发表日期
1996/8
期刊
Medical Imaging, IEEE Transactions on
卷号
15
期号
4
页码范围
429-442
出版商
IEEE
简介
Intensity-based classification of MR images has proven problematic, even when advanced techniques are used. Intrascan and interscan intensity inhomogeneities are a common source of difficulty. While reported methods have had some success in correcting intrascan inhomogeneities, such methods require supervision for the individual scan. This paper describes a new method called adaptive segmentation that uses knowledge of tissue intensity properties and intensity inhomogeneities to correct and segment MR images. Use of the expectation-maximization (EM) algorithm leads to a method that allows for more accurate segmentation of tissue types as well as better visualization of magnetic resonance imaging (MRI) data, that has proven to be effective in a study that includes more than 1000 brain scans. Implementation and results are described for segmenting the brain in the following types of images: axial …
引用总数
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学术搜索中的文章
WM Wells, WEL Grimson, R Kikinis, FA Jolesz - IEEE transactions on medical imaging, 1996