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20062022
most citedSelf-supervised Learning from 100 Million Medical Images

26 citations · 136 across the 13 of their papers we have counts for

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Showing 2018Show all

5 papers · 1 filter

cs.CV20185 cited

Class-Aware Adversarial Lung Nodule Synthesis in CT Images

Jie Yang, Siqi Liu, Sasa Grbic +7

Though large-scale datasets are essential for training deep learning systems, it is expensive to scale up the collection of medical imaging datasets. Synthesizing the objects of in…

cs.CV2018

Decompose to manipulate: Manipulable Object Synthesis in 3D Medical Images with Structured Image Decomposition

Siqi Liu, Eli Gibson, Sasa Grbic +5

The performance of medical image analysis systems is constrained by the quantity of high-quality image annotations. Such systems require data to be annotated by experts with years…

cs.CV2018

Generating Synthetic X-ray Images of a Person from the Surface Geometry

Brian Teixeira, Vivek Singh, Terrence Chen +5

We present a novel framework that learns to predict human anatomy from body surface. Specifically, our approach generates a synthetic X-ray image of a person only from the person's…

cs.CV2018

Select, Attend, and Transfer: Light, Learnable Skip Connections

Saeid Asgari Taghanaki, Aicha Bentaieb, Anmol Sharma +8

Skip connections in deep networks have improved both segmentation and classification performance by facilitating the training of deeper network architectures, and reducing the risk…

cs.CV2018

Learning to recognize Abnormalities in Chest X-Rays with Location-Aware Dense Networks

Sebastian Guendel, Sasa Grbic, Bogdan Georgescu +4

Chest X-ray is the most common medical imaging exam used to assess multiple pathologies. Automated algorithms and tools have the potential to support the reading workflow, improve…