1
Biomedical image analysis competitions: The state of current participation practice
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Computer vision in surgery: from potential to clinical value
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Federated Contrastive Learning for Volumetric Medical Image Segmentation
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CholecTriplet2021: A benchmark challenge for surgical action triplet recognition
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mc-BEiT: Multi-choice Discretization for Image BERT Pre-training
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On the Pitfalls of Batch Normalization for End-to-End Video Learning: A Study on Surgical Workflow Analysis
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Federated Cycling (FedCy): Semi-Supervised Federated Learning of Surgical Phases
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Temporally Constrained Neural Networks (TCNN): A framework for semi-supervised video semantic segmentation
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Masked Feature Prediction for Self-Supervised Visual Pre-Training
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PeCo: Perceptual Codebook for BERT Pre-training of Vision Transformers
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Domain Generalization for Mammography Detection via Multi-style and Multi-view Contrastive Learning
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SimMIM: a Simple Framework for Masked Image Modeling
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Masked Autoencoders Are Scalable Vision Learners
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Comparative Validation of Machine Learning Algorithms for Surgical Workflow and Skill Analysis with the HeiChole Benchmark
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Federated Contrastive Learning for Decentralized Unlabeled Medical Images
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Semi-supervised Contrastive Learning for Label-efficient Medical Image Segmentation
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Rendezvous: Attention Mechanisms for the Recognition of Surgical Action Triplets in Endoscopic Videos
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Lesion-based Contrastive Learning for Diabetic Retinopathy Grading from Fundus Images
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Anatomy-Constrained Contrastive Learning for Synthetic Segmentation without Ground-truth
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Semi-supervised learning with progressive unlabeled data excavation for label-efficient surgical workflow recognition
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Categorical Relation-Preserving Contrastive Knowledge Distillation for Medical Image Classification
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Contrastive Learning with Continuous Proxy Meta-Data for 3D MRI Classification
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Positional Contrastive Learning for Volumetric Medical Image Segmentation
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BEiT: BERT Pre-Training of Image Transformers
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Multi-Task, Multi-Domain Deep Segmentation with Shared Representations and Contrastive Regularization for Sparse Pediatric Datasets
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A Large-Scale Study on Unsupervised Spatiotemporal Representation Learning
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Emerging Properties in Self-Supervised Vision Transformers
28
Real-Time Coarse-to-Fine Depth Estimation on Stereo Endoscopic Images With Self-Supervised Learning
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CaDIS: Cataract dataset for surgical RGB-image segmentation
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Temporal Memory Relation Network for Workflow Recognition From Surgical Video
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VideoMoCo: Contrastive Video Representation Learning with Temporally Adversarial Examples
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OperA: Attention-Regularized Transformers for Surgical Phase Recognition
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Constrained Contrastive Distribution Learning for Unsupervised Anomaly Detection and Localisation in Medical Images
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Self-supervised Pretraining of Visual Features in the Wild
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A Kinematic Bottleneck Approach for Pose Regression of Flexible Surgical Instruments Directly From Images
36
Contrastive Learning of Relative Position Regression for One-Shot Object Localization in 3D Medical Images
37
USCL: Pretraining Deep Ultrasound Image Diagnosis Model Through Video Contrastive Representation Learning
38
Dense Contrastive Learning for Self-Supervised Visual Pre-Training
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Machine Learning for Surgical Phase Recognition: A Systematic Review.
40
Surgical data science – from concepts toward clinical translation
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An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
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Self-supervised Co-training for Video Representation Learning
43
Self-supervised Contrastive Video-Speech Representation Learning for Ultrasound
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What Should Not Be Contrastive in Contrastive Learning
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Spatiotemporal Contrastive Video Representation Learning
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Video Representation Learning by Recognizing Temporal Transformations
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Generative Pretraining From Pixels
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Unsupervised Learning of Visual Features by Contrasting Cluster Assignments
49
Bootstrap Your Own Latent: A New Approach to Self-Supervised Learning
50
SpeedNet: Learning the Speediness in Videos
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TeCNO: Surgical Phase Recognition with Multi-Stage Temporal Convolutional Networks
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Improved Baselines with Momentum Contrastive Learning
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A Simple Framework for Contrastive Learning of Visual Representations
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Self-Supervised Learning of Pretext-Invariant Representations
55
Momentum Contrast for Unsupervised Visual Representation Learning
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Self-labelling via simultaneous clustering and representation learning
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Randaugment: Practical automated data augmentation with a reduced search space
58
Multi-Task Recurrent Convolutional Network with Correlation Loss for Surgical Video Analysis
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Contrastive Multiview Coding
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Learning Representations by Maximizing Mutual Information Across Views
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Self-Supervised Spatiotemporal Learning via Video Clip Order Prediction
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Data-Efficient Image Recognition with Contrastive Predictive Coding
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DynamoNet: Dynamic Action and Motion Network
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Local Aggregation for Unsupervised Learning of Visual Embeddings
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Learning Correspondence From the Cycle-Consistency of Time
66
Self-Supervised Visual Feature Learning With Deep Neural Networks: A Survey
67
Self-Supervised Surgical Tool Segmentation using Kinematic Information
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CATARACTS: Challenge on automatic tool annotation for cataRACT surgery
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Weakly supervised convolutional LSTM approach for tool tracking in laparoscopic videos
70
Self-Supervised Video Representation Learning with Space-Time Cubic Puzzles
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Video Jigsaw: Unsupervised Learning of Spatiotemporal Context for Video Action Recognition
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Learning deep representations by mutual information estimation and maximization
73
DeepPhase: Surgical Phase Recognition in CATARACTS Videos
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Deep Clustering for Unsupervised Learning of Visual Features
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Representation Learning with Contrastive Predictive Coding
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Monitoring tool usage in surgery videos using boosted convolutional and recurrent neural networks
77
Tracking Emerges by Colorizing Videos
78
Temporal coherence-based self-supervised learning for laparoscopic workflow analysis
79
Less is More: Surgical Phase Recognition with Less Annotations through Self-Supervised Pre-training of CNN-LSTM Networks
80
Unsupervised Feature Learning via Non-parametric Instance Discrimination
81
SV-RCNet: Workflow Recognition From Surgical Videos Using Recurrent Convolutional Network
82
Unsupervised Representation Learning by Predicting Image Rotations
83
Learning Image Representations by Completing Damaged Jigsaw Puzzles
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Exploiting the potential of unlabeled endoscopic video data with self-supervised learning
85
MegDet: A Large Mini-Batch Object Detector
86
Neural Discrete Representation Learning
87
Mixed Precision Training
88
Large Batch Training of Convolutional Networks
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Unsupervised Representation Learning by Sorting Sequences
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Quo Vadis, Action Recognition? A New Model and the Kinetics Dataset
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Unsupervised temporal context learning using convolutional neural networks for laparoscopic workflow analysis
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Surgical data science for next-generation interventions
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Learning Features by Watching Objects Move
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Split-Brain Autoencoders: Unsupervised Learning by Cross-Channel Prediction
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Single- and Multi-Task Architecture for Surgical Workflow at M2CAI 2016
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Context Encoders: Feature Learning by Inpainting
97
Unsupervised Learning of Visual Representations by Solving Jigsaw Puzzles
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Colorful Image Colorization
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Shuffle and Learn: Unsupervised Learning Using Temporal Order Verification
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Automatic data-driven real-time segmentation and recognition of surgical workflow
101
Communication-Efficient Learning of Deep Networks from Decentralized Data
102
EndoNet: A Deep Architecture for Recognition Tasks on Laparoscopic Videos
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Deep Residual Learning for Image Recognition
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Unsupervised Visual Representation Learning by Context Prediction
105
Representation Learning
106
Distilling the Knowledge in a Neural Network
107
Adam: A Method for Stochastic Optimization
108
Predicting Depth, Surface Normals and Semantic Labels with a Common Multi-scale Convolutional Architecture
109
Discriminative Unsupervised Feature Learning with Convolutional Neural Networks
110
Sinkhorn Distances: Lightspeed Computation of Optimal Transport
111
UCF101: A Dataset of 101 Human Actions Classes From Videos in The Wild
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Statistical modeling and recognition of surgical workflow
113
HMDB: A large video database for human motion recognition
114
Modeling and Segmentation of Surgical Workflow from Laparoscopic Video
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ImageNet: A large-scale hierarchical image database
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Dimensionality Reduction by Learning an Invariant Mapping
117
Contrastive Learning Based Stain Normalization Across Multiple Tumor in Histopathology
118
Unsupervised Contrastive Learning of Radiomics and Deep Features for Label-Efficient Tumor Classification
119
Distinguishing Differences Matters: Focal Contrastive Network for Peripheral Anterior Synechiae Recognition
120
Contrastive Pre-training and Representation Distillation for Medical Visual Question Answering Based on Radiology Images
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OR 2.0 Context-Aware Operating Theaters, Computer Assisted Robotic Endoscopy, Clinical Image-Based Procedures, and Skin Image Analysis
124
For the Initialization hyperparameter study, we initialize ResNet-50 weights as follows: 1) fully-supervised Imagenet weights
125
Self-Supervised Video Representation Learning with Odd-One-Out Networks
126
Image Computing and Computer Assisted Intervention - MICCAI