Cluster analysis of dynamic cerebral contrast-enhanced perfusion MRI time-series.

Wismüller, A; Meyer-Baese, A; Lange, O; Reiser, M F; Leinsinger, G · IEEE Trans Med Imaging · 2006

prospective_cohort · Level II

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Abstract

We performed neural network clustering on dynamic contrast-enhanced perfusion magnetic resonance imaging time-series in patients with and without stroke. Minimal-free-energy vector quantization, self-organizing maps, and fuzzy c-means clustering enabled self-organized data-driven segmentation with respect to fine-grained differences of signal amplitude and dynamics, thus identifying asymmetries and local abnormalities of brain perfusion. We conclude that clustering is a useful extension to conventional perfusion parameter maps.

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