DocumentCode :
1771619
Title :
Automatic polyp detection from learned boundaries
Author :
Tajbakhsh, Nima ; Changching Chi ; Gurudu, Suryakanth R. ; Jianming Liang
fYear :
2014
fDate :
April 29 2014-May 2 2014
Firstpage :
97
Lastpage :
100
Abstract :
Colonoscopy is the primary method for detecting and removing polyps - precursors to colon cancer, but during colonoscopy, a significant number of polyps are missed - the pooled miss-rate for all polyps is 22% (95% CI, 19%-26%). This paper presents an automatic polyp detection system for colonoscopy, aiming to alert colonoscopists to possible polyps during the procedures. Given an input image, our method first collects a crude set of edge pixels, then refines this edge map by effectively removing many non-polyp boundary edges through a classification scheme, and finally localizes polyps based on the retained edges with a novel voting scheme. This paper makes three original contributions: (1) a fast and discriminative patch descriptor for precisely characterizing image appearance, (2) a new 2-stage classification pipeline for accurately excluding undesired edges, and (3) a novel voting scheme for robustly localizing polyps from fragmented edge maps. Evaluations demonstrate that our method outperforms the state-of-the-art.
Keywords :
biological tissues; biomedical optical imaging; cancer; edge detection; endoscopes; image classification; medical image processing; automatic polyp detection system; classification pipeline; classification scheme; colon cancer; colonoscopy; discriminative patch descriptor; edge pixels; fast patch descriptor; fragmented edge maps; image appearance characterization; learned boundaries; nonpolyp boundary edges; polyp localization; polyp removal; pooled miss-rate; voting scheme; Colonoscopy; Feature extraction; Image edge detection; Lighting; Probabilistic logic; Shape; Training;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Imaging (ISBI), 2014 IEEE 11th International Symposium on
Conference_Location :
Beijing
Type :
conf
DOI :
10.1109/ISBI.2014.6867818
Filename :
6867818
Link To Document :
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