DocumentCode :
1837747
Title :
Fully automatic liver tumor segmentation from abdominal CT scans
Author :
Abdel-massieh, Nader H. ; Hadhoud, Mohiy M. ; Amin, Khalid M.
Author_Institution :
Inf. Technol. Dept., Menoufia Univ., Elkom, Egypt
fYear :
2010
fDate :
Nov. 30 2010-Dec. 2 2010
Firstpage :
197
Lastpage :
202
Abstract :
Liver cancer causes the majority of primary malignant liver tumors among adults. Computed Tomography (CT) scans are generally used to make the treatment plan or to prepare for ablation surgery. Processing CT image includes the automatic diagnosis of liver pathologies, such as detecting lesions and following vessels ramification, and 3D volume rendering. This paper presents a new fully automatic method to segment the tumors in liver structure with no interaction from user. Contrast enhancement is applied to the slices of segmented liver, then adding each image to itself to have a white image with some pepper noise and tumors as dark gray spots. After applying Gaussian smoothing, Isodata threshold is used to turn the image into binary with tumors as black spots on white background. Tests are reported on abdominal datasets showing promising result.
Keywords :
Gaussian processes; computerised tomography; image segmentation; liver; medical image processing; object detection; rendering (computer graphics); smoothing methods; tumours; 3D volume rendering; Gaussian smoothing; abdominal CT scans; ablation surgery; automatic liver pathologies diagnosis; computed tomography; fully automatic liver tumor segmentation; isodata threshold; lesion detection; treatment plan; vessels ramification; Biomedical imaging; Computed tomography; Image segmentation; Lesions; Liver; Three dimensional displays; Contrast enhancement; Gaussian smoothing; Isodata threshold; Liver segmentation; Tumor detection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Engineering and Systems (ICCES), 2010 International Conference on
Conference_Location :
Cairo
Print_ISBN :
978-1-4244-7040-2
Type :
conf
DOI :
10.1109/ICCES.2010.5674853
Filename :
5674853
Link To Document :
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