Title :
A novel nested graph cuts method for segmenting human lymph nodes in 3D high frequency ultrasound images
Author :
Jen-wei Kuo ; Mamou, Jonathan ; Yao Wang ; Saegusa-Beecroft, Emi ; Machi, Junji ; Feleppa, Ernest J.
Author_Institution :
Polytech. Sch. of Eng., Dept. of Electr. & Comput. Eng., New York Univ., New York, NY, USA
Abstract :
Three-dimensional (3D) quantitative-ultrasound (QUS) methods were recently developed and successfully applied to detect cancerous regions in freshly-dissected lymph nodes (LNs). The 3D high frequency ultrasound (HFU) images obtained from these LNs contain three different parts: LN-parenchyma (LNP), fat, and phosphate-buffered saline (PBS). To apply QUS estimates inside the LNP region, an automatic and accurate algorithm for LNP segmentation is needed. In this paper, we describe a novel, nested-graph-cut (NGC) method that effectively exploits the nested structure of the LN images. To overcome the large variability of the intensity distribution of LNP pixels due to acoustic attenuation and focusing, we further describe an iterative self-updating framework combining NGC and spline-based robust intensity fitting. Dice similarity coefficients of 89.56±8.44% were achieved when the proposed automatic segmentation algorithm was compared to expert manual segmentation on a dataset consisting of 115 LNs.
Keywords :
biological organs; biomedical ultrasonics; cancer; image segmentation; medical image processing; 3D HFU image; 3D QUS method; LNP pixel intensity distribution; LNP region; NGC method; QUS estimation; acoustic attenuation; automatic segmentation algorithm; cancerous region detection; dice similarity coefficient; expert manual segmentation; fat; freshly-dissected lymph node; high frequency ultrasound; human LNP segmentation; iterative self-updating framework; lymph node-parenchyma; nested graph cut; nested lymph node image structure; nested-graph-cut; phosphate-buffered saline; quantitative-ultrasound; spline-based robust intensity fitting; Attenuation; Focusing; Image segmentation; Lymph nodes; Shape; Three-dimensional displays; Ultrasonic imaging; Lymph node; graph cuts; segmentation; ultrasound;
Conference_Titel :
Biomedical Imaging (ISBI), 2015 IEEE 12th International Symposium on
Conference_Location :
New York, NY
DOI :
10.1109/ISBI.2015.7163890