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Erschienen in: European Radiology 7/2010

01.07.2010 | Computer Applications

Liver tumour segmentation using contrast-enhanced multi-detector CT data: performance benchmarking of three semiautomated methods

verfasst von: Jia-Yin Zhou, Damon W. K. Wong, Feng Ding, Sudhakar K. Venkatesh, Qi Tian, Ying-Yi Qi, Wei Xiong, Jimmy J. Liu, Wee-Kheng Leow

Erschienen in: European Radiology | Ausgabe 7/2010

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Abstract

Objective

Automatic tumour segmentation and volumetry is useful in cancer staging and treatment outcome assessment. This paper presents a performance benchmarking study on liver tumour segmentation for three semiautomatic algorithms: 2D region growing with knowledge-based constraints (A1), 2D voxel classification with propagational learning (A2) and Bayesian rule-based 3D region growing (A3).

Methods

CT data from 30 patients were studied, and 47 liver tumours were isolated and manually segmented by experts to obtain the reference standard. Four datasets with ten tumours were used for algorithm training and the remaining 37 tumours for testing. Three evaluation metrics, relative absolute volume difference (RAVD), volumetric overlap error (VOE) and average symmetric surface distance (ASSD), were computed based on computerised and reference segmentations.

Results

A1, A2 and A3 obtained mean/median RAVD scores of 17.93/10.53%, 17.92/9.61% and 34.74/28.75%, mean/median VOEs of 30.47/26.79%, 25.70/22.64% and 39.95/38.54%, and mean/median ASSDs of 2.05/1.41 mm, 1.57/1.15 mm and 4.12/3.41 mm, respectively. For each metric, we obtained significantly lower values of A1 and A2 than A3 (P < 0.01), suggesting that A1 and A2 outperformed A3.

Conclusions

Compared with the reference standard, the overall performance of A1 and A2 is promising. Further development and validation is necessary before reliable tumour segmentation and volumetry can be widely used clinically.
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Metadaten
Titel
Liver tumour segmentation using contrast-enhanced multi-detector CT data: performance benchmarking of three semiautomated methods
verfasst von
Jia-Yin Zhou
Damon W. K. Wong
Feng Ding
Sudhakar K. Venkatesh
Qi Tian
Ying-Yi Qi
Wei Xiong
Jimmy J. Liu
Wee-Kheng Leow
Publikationsdatum
01.07.2010
Verlag
Springer-Verlag
Erschienen in
European Radiology / Ausgabe 7/2010
Print ISSN: 0938-7994
Elektronische ISSN: 1432-1084
DOI
https://doi.org/10.1007/s00330-010-1712-z

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