UOLO - automatic object detection and segmentation in biomedical images
October 09, 2018 Β· Declared Dead Β· π DLMIA/ML-CDS@MICCAI
"No code URL or promise found in abstract"
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Authors
Teresa AraΓΊjo, Guilherme Aresta, Adrian Galdran, Pedro Costa, Ana Maria MendonΓ§a, AurΓ©lio Campilho
arXiv ID
1810.05729
Category
cs.CV: Computer Vision
Cross-listed
cs.LG,
stat.ML
Citations
26
Venue
DLMIA/ML-CDS@MICCAI
Last Checked
3 months ago
Abstract
We propose UOLO, a novel framework for the simultaneous detection and segmentation of structures of interest in medical images. UOLO consists of an object segmentation module which intermediate abstract representations are processed and used as input for object detection. The resulting system is optimized simultaneously for detecting a class of objects and segmenting an optionally different class of structures. UOLO is trained on a set of bounding boxes enclosing the objects to detect, as well as pixel-wise segmentation information, when available. A new loss function is devised, taking into account whether a reference segmentation is accessible for each training image, in order to suitably backpropagate the error. We validate UOLO on the task of simultaneous optic disc (OD) detection, fovea detection, and OD segmentation from retinal images, achieving state-of-the-art performance on public datasets.
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