Publication | Closed Access
A multiparametric and multiresolution segmentation algorithm of 3D ultrasonic data
49
Citations
29
References
2001
Year
Medical UltrasoundEngineeringComputer-aided DesignVolume ParameterizationComputational MechanicsMulti-resolution MethodDiagnostic ImagingImage AnalysisPattern RecognitionUltrasonic DataBiostatisticsComputational GeometryRadiologyGeometric ModelingMedical ImagingEnvelope DataMultiresolution Segmentation AlgorithmInverse Problems3-D Adaptive ClusteringUltrasoundMedical Image ComputingSignal ProcessingNatural SciencesBiomedical ImagingMedical Image AnalysisImage Segmentation3D Imaging
An algorithm devoted to the segmentation of 3-D ultrasonic data is proposed. The algorithm involves 3-D adaptive clustering based on multiparametric information: the gray-scale intensity of the echographic data, 3-D texture features calculated from the envelope data, and 3-D tissue characterization information calculated from the local frequency spectra of the radio-frequency signals. The segmentation problem is formulated as a Maximum A posterior (MAP) estimation problem. A multi-resolution implementation of the algorithm is proposed. The approach is tested on simulated data and on in vivo echocardiographic 3-D data. The results presented in the paper illustrate the robustness and the accuracy of the proposed approach for the segmentation of ultrasonic data.
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