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HESKO, B. KOLÁŘ, R. HARABIŠ, V.
Original Title
Optical Disc Segmentation Using Fully Convolutional Neural Network in Retina Images
Type
conference paper
Language
English
Original Abstract
This paper focuses on optic disc segmentation, which is one of the main steps in glaucoma diagnostics. A novel method, based on semantic, pixel-wise segmentation using the fully convolutional network is applied to the RIM-ONE dataset. This approach is advantageous because no additional preprocessing or postprocessing is needed. Moreover, results are promising, reaching mean IOU at about 0.7 and thus can compete with state of the art methods. The only disadvantage lays in the need of training dataset of sufficient size.
Keywords
optic disc segmentation, deep learning, ophthalmology
Authors
HESKO, B.; KOLÁŘ, R.; HARABIŠ, V.
Released
10. 9. 2018
Publisher
Vysoké učení technické v Brně, Fakulta elektrotechniky a komunikačních technologií
Location
Brno
ISBN
978-80-214-5661-7
Book
Proceedings of IEEE Student Branch Conference Blansko 2018
Edition
2018
Edition number
první
Pages from
16
Pages to
20
Pages count
4
BibTex
@inproceedings{BUT149748, author="Branislav {Hesko} and Radim {Kolář} and Vratislav {Harabiš}", title="Optical Disc Segmentation Using Fully Convolutional Neural Network in Retina Images", booktitle="Proceedings of IEEE Student Branch Conference Blansko 2018", year="2018", series="2018", number="první", pages="16--20", publisher="Vysoké učení technické v Brně, Fakulta elektrotechniky a komunikačních technologií", address="Brno", isbn="978-80-214-5661-7" }