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      Multi-scale semi-supervised clustering of brain images: Deriving disease subtypes

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          LIBSVM: A library for support vector machines

          LIBSVM is a library for Support Vector Machines (SVMs). We have been actively developing this package since the year 2000. The goal is to help users to easily apply SVM to their applications. LIBSVM has gained wide popularity in machine learning and many other areas. In this article, we present all implementation details of LIBSVM. Issues such as solving SVM optimization problems theoretical convergence multiclass classification probability estimates and parameter selection are discussed in detail.
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            N4ITK: improved N3 bias correction.

            A variant of the popular nonparametric nonuniform intensity normalization (N3) algorithm is proposed for bias field correction. Given the superb performance of N3 and its public availability, it has been the subject of several evaluation studies. These studies have demonstrated the importance of certain parameters associated with the B-spline least-squares fitting. We propose the substitution of a recently developed fast and robust B-spline approximation routine and a modified hierarchical optimization scheme for improved bias field correction over the original N3 algorithm. Similar to the N3 algorithm, we also make the source code, testing, and technical documentation of our contribution, which we denote as "N4ITK," available to the public through the Insight Toolkit of the National Institutes of Health. Performance assessment is demonstrated using simulated data from the publicly available Brainweb database, hyperpolarized (3)He lung image data, and 9.4T postmortem hippocampus data.
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              Algorithm AS 136: A K-Means Clustering Algorithm

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                Author and article information

                Journal
                Medical Image Analysis
                Medical Image Analysis
                Elsevier BV
                13618415
                January 2022
                January 2022
                : 75
                : 102304
                Article
                10.1016/j.media.2021.102304
                34818611
                53c17fee-f83e-4553-a5ad-6f6fa8fbd310
                © 2022

                https://www.elsevier.com/tdm/userlicense/1.0/

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