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Measuring Efficiency of Semi-automated Brain Tumor Segmentation by Simulating User Interaction
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Deep-learning-based Detection and Segmentation-assisted Management on Brain Metastases.
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Dissecting multi drug resistance in head and neck cancer cells using multicellular tumor spheroids
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CAI4CAI: The Rise of Contextual Artificial Intelligence in Computer-Assisted Interventions
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Multi-task Learning for Neonatal Brain Segmentation Using 3D Dense-Unet with Dense Attention Guided by Geodesic Distance
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On the Compactness, Efficiency, and Representation of 3D Convolutional Networks: Brain Parcellation as a Pretext Task
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Scalable multimodal convolutional networks for brain tumour segmentation
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SuRVoS: Super-Region Volume Segmentation workbench
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A survey on deep learning in medical image analysis
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Slic-Seg: A minimally interactive segmentation of the placenta from sparse and motion-corrupted fetal MRI in multiple views
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Temporal Convolutional Networks for Action Segmentation and Detection
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Fast Fully Automatic Segmentation of the Human Placenta from Motion Corrupted MRI
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Dynamically Balanced Online Random Forests for Interactive Scribble-Based Segmentation
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Temporal Convolutional Networks: A Unified Approach to Action Segmentation
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Gaussian Conditional Random Field Network for Semantic Segmentation
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3D U-Net: Learning Dense Volumetric Segmentation from Sparse Annotation
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V-Net: Fully Convolutional Neural Networks for Volumetric Medical Image Segmentation
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DeepLab: Semantic Image Segmentation with Deep Convolutional Nets, Atrous Convolution, and Fully Connected CRFs
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DeepCut: Object Segmentation From Bounding Box Annotations Using Convolutional Neural Networks
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ScribbleSup: Scribble-Supervised Convolutional Networks for Semantic Segmentation
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End-to-End Tracking and Semantic Segmentation Using Recurrent Neural Networks
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Instance-Sensitive Fully Convolutional Networks
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Efficient multi‐scale 3D CNN with fully connected CRF for accurate brain lesion segmentation
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Deep Interactive Object Selection
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Deep Residual Learning for Image Recognition
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Multi-Scale Context Aggregation by Dilated Convolutions
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Efficient Likelihood Learning of a Generic CNN-CRF Model for Semantic Segmentation
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The Multimodal Brain Tumor Image Segmentation Benchmark (BRATS)
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U-Net: Convolutional Networks for Biomedical Image Segmentation
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Brain tumor segmentation with Deep Neural Networks
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Single-click, semi-automatic lung nodule contouring using hierarchical conditional random fields
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Efficient Piecewise Training of Deep Structured Models for Semantic Segmentation
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Conditional Random Fields as Recurrent Neural Networks
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Semantic Image Segmentation with Deep Convolutional Nets and Fully Connected CRFs
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Deep convolutional neural fields for depth estimation from a single image
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Hypercolumns for object segmentation and fine-grained localization
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Fully convolutional networks for semantic segmentation
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Automated fetal brain segmentation from 2D MRI slices for motion correction
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Going deeper with convolutions
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Learning Fully-Connected CRFs for Blood Vessel Segmentation in Retinal Images
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Very Deep Convolutional Networks for Large-Scale Image Recognition
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4D active cut: An interactive tool for pathological anatomy modeling
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Simultaneous Detection and Segmentation
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Recurrent Convolutional Neural Networks for Scene Labeling
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Caffe: Convolutional Architecture for Fast Feature Embedding
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Rich Feature Hierarchies for Accurate Object Detection and Semantic Segmentation
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Deep Feature Learning for Knee Cartilage Segmentation Using a Triplanar Convolutional Neural Network
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GeoF: Geodesic Forests for Learning Coupled Predictors
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Parameter Learning and Convergent Inference for Dense Random Fields
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Learning Graphical Model Parameters with Approximate Marginal Inference
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ImageNet classification with deep convolutional neural networks
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Clavicle segmentation in chest radiographs
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4D Multi-Modality Tissue Segmentation of Serial Infant Images
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Tumor-Cut: Segmentation of Brain Tumors on Contrast Enhanced MR Images for Radiosurgery Applications
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Efficient Inference in Fully Connected CRFs with Gaussian Edge Potentials
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Globally Optimal Tumor Segmentation in PET-CT Images: A Graph-Based Co-segmentation Method
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(RF)^2 - Random Forest Random Field
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The making of fetal surgery
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A study on continuous max-flow and min-cut approaches
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Fast High‐Dimensional Filtering Using the Permutohedral Lattice
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GeoS: Geodesic Image Segmentation
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Learning CRFs Using Graph Cuts
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Random Field Model for Integration of Local Information and Global Information
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A Geodesic Framework for Fast Interactive Image and Video Segmentation and Matting
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Medical Image Segmentation: Methods and Software
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Interactive segmentation of image volumes with Live Surface
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Random Walks for Image Segmentation
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User-guided 3D active contour segmentation of anatomical structures: Significantly improved efficiency and reliability
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Image-processing technique for suppressing ribs in chest radiographs by means of massive training artificial neural network (MTANN)
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Segmentation of anatomical structures in chest radiographs using supervised methods: a comparative study on a public database
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GIST: an interactive, GPU-based level set segmentation tool for 3D medical images
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"GrabCut": interactive foreground extraction using iterated graph cuts
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What energy functions can be minimized via graph cuts?
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An experimental comparison of min-cut/max- flow algorithms for energy minimization in vision
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Interactive graph cuts for optimal boundary & region segmentation of objects in N-D images
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Snakes, shapes, and gradient vector flow
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An Overview of Interactive Medical Image Segmentation
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Online Random Forest for Interactive Image Segmentation
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Automated medical image segmentation techniques
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This Paper Is Included in the Proceedings of the 12th Usenix Symposium on Operating Systems Design and Implementation (osdi '16). Tensorflow: a System for Large-scale Machine Learning Tensorflow: a System for Large-scale Machine Learning
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Quantitative evaluation of 3D brain tumor segmentation by DeepIGeoS, GeoS and ITK-SNAP