Publication | Open Access
A Supervised Patch-Based Approach for Human Brain Labeling
270
Citations
39
References
2011
Year
EngineeringBrain MappingImage AnalysisPattern RecognitionImage RegistrationNeurologyRadiologyLabel Propagation FrameworkMachine VisionNeuroimaging ModalityMedical ImagingNeuroinformaticsNeuroimagingSupervised Patch-based ApproachAnatomy TextbookMedical Image ComputingComputer VisionComputational NeuroscienceBiomedical ImagingImage Intensity SimilaritiesImage DenoisingNeuroscienceMedicineMedical Image Analysis
We propose in this work a patch-based image labeling method relying on a label propagation framework. Based on image intensity similarities between the input image and an anatomy textbook, an original strategy which does not require any nonrigid registration is presented. Following recent developments in nonlocal image denoising, the similarity between images is represented by a weighted graph computed from an intensity-based distance between patches. Experiments on simulated and in vivo magnetic resonance images show that the proposed method is very successful in providing automated human brain labeling.
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