SYSTEM AND METHODS FOR INFERRING THICKNESS OF OBJECT CLASSES OF INTEREST IN TWO-DIMENSIONAL MEDICAL IMAGES USING DEEP NEURAL NETWORKS

Methods and systems are provided for inferring thickness and volume of one or more object classes of interest in two-dimensional (2D) medical images, using deep neural networks. In an exemplary embodiment, a thickness of an object class of interest may be inferred by acquiring a 2D medical image, ex...

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Hauptverfasser: MELAPUDI, Vikram, AVINASH, Gopal, MULLICK, Rakesh, SONI, Ravi, DAS, Bipul, TAN, Tao, TEGZES, Pál, SHRIRAM, Krishna Seetharam, FERENCZI, Lehel, FEJES, Máté
Format: Patent
Sprache:eng ; fre ; ger
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Zusammenfassung:Methods and systems are provided for inferring thickness and volume of one or more object classes of interest in two-dimensional (2D) medical images, using deep neural networks. In an exemplary embodiment, a thickness of an object class of interest may be inferred by acquiring a 2D medical image, extracting features from the 2D medical image, mapping the features to a segmentation mask for an object class of interest using a first convolutional neural network (CNN), mapping the features to a thickness mask for the object class of interest using a second CNN, wherein the thickness mask indicates a thickness of the object class of interest at each pixel of a plurality of pixels of the 2D medical image; and determining a volume of the object class of interest based on the thickness mask and the segmentation mask.