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Robust Pulmonary Nodule Segmentation in CT Image for Juxta-pleural and Juxta-vascular Case
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Background:
Lung cancer is a greatest threat to people's health and life. CT image leads to
unclear boundary segmentation. Segmentation of irregular nodules and complex structure, boundary
information is not well considered and lung nodules have always been a hot topic.
Objective:
In this study, the pulmonary nodule segmentation is accomplished with the new graph cut
algorithm. The problem of segmenting the juxta-pleural and juxta-vascular nodules was investigated
which is based on graph cut algorithm.
Methods:
Firstly, the inflection points by the curvature was decided. Secondly, we used kernel graph
cut to segment the nodules for the initial edge. Thirdly, the seeds points based on cast raying method is
performed; lastly, a novel geodesic distance function is proposed to improve the graph cut algorithm
and applied in lung nodules segmentation.
Results:
The new algorithm has been tested on total 258 nodules. Table 1 summarizes the morphologic
features of all the nodules and given the results between the successful segmentation group and the
poor/failed segmentation group. Figure 1 to Fig. (12) shows segmentation effect of Juxta-vascular
nodules, Juxta-pleural nodules, and comparted with the other interactive segmentation methods.
Conclusion:
The experimental verification shows better results with our algorithm, the results will
measure the volume numerical approach to nodule volume. The results of lung nodules segmentation
in this study are as good as the results obtained by the other methods.
Bentham Science Publishers Ltd.
Title: Robust Pulmonary Nodule Segmentation in CT Image for Juxta-pleural and Juxta-vascular Case
Description:
Background:
Lung cancer is a greatest threat to people's health and life.
CT image leads to
unclear boundary segmentation.
Segmentation of irregular nodules and complex structure, boundary
information is not well considered and lung nodules have always been a hot topic.
Objective:
In this study, the pulmonary nodule segmentation is accomplished with the new graph cut
algorithm.
The problem of segmenting the juxta-pleural and juxta-vascular nodules was investigated
which is based on graph cut algorithm.
Methods:
Firstly, the inflection points by the curvature was decided.
Secondly, we used kernel graph
cut to segment the nodules for the initial edge.
Thirdly, the seeds points based on cast raying method is
performed; lastly, a novel geodesic distance function is proposed to improve the graph cut algorithm
and applied in lung nodules segmentation.
Results:
The new algorithm has been tested on total 258 nodules.
Table 1 summarizes the morphologic
features of all the nodules and given the results between the successful segmentation group and the
poor/failed segmentation group.
Figure 1 to Fig.
(12) shows segmentation effect of Juxta-vascular
nodules, Juxta-pleural nodules, and comparted with the other interactive segmentation methods.
Conclusion:
The experimental verification shows better results with our algorithm, the results will
measure the volume numerical approach to nodule volume.
The results of lung nodules segmentation
in this study are as good as the results obtained by the other methods.
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