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Erschienen in: International Journal of Computer Assisted Radiology and Surgery 1/2016

01.01.2016 | Original Article

Model-based segmentation in orbital volume measurement with cone beam computed tomography and evaluation against current concepts

verfasst von: Maximilian E. H. Wagner, Nils-Claudius Gellrich, Karl-Ingo Friese, Matthias Becker, Franz-Erich Wolter, Juergen T. Lichtenstein, Marcus Stoetzer, Majeed Rana, Harald Essig

Erschienen in: International Journal of Computer Assisted Radiology and Surgery | Ausgabe 1/2016

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Abstract

Purpose

Objective determination of the orbital volume is important in the diagnostic process and in evaluating the efficacy of medical and/or surgical treatment of orbital diseases. Tools designed to measure orbital volume with computed tomography (CT) often cannot be used with cone beam CT (CBCT) because of inferior tissue representation, although CBCT has the benefit of greater availability and lower patient radiation exposure. Therefore, a model-based segmentation technique is presented as a new method for measuring orbital volume and compared to alternative techniques.

Methods

Both eyes from thirty subjects with no known orbital pathology who had undergone CBCT as a part of routine care were evaluated (\(n = 60\) eyes). Orbital volume was measured with manual, atlas-based, and model-based segmentation methods. Volume measurements, volume determination time, and usability were compared between the three methods. Differences in means were tested for statistical significance using two-tailed Student’s t tests.

Results

Neither atlas-based \((26.63 \pm 3.15\,\hbox {mm}^{3})\) nor model-based \((26.87 \pm 2.99\,\hbox {mm}^{3})\) measurements were significantly different from manual volume measurements \((26.65 \pm 4.0\,\hbox {mm}^{3})\). However, the time required to determine orbital volume was significantly longer for manual measurements (\(10.24 \pm 1.21\) min) than for atlas-based (\(6.96 \pm 2.62\) min, \(p < 0.001\)) or model-based (\(5.73 \pm 1.12\) min, \(p < 0.001\)) measurements.

Conclusion

All three orbital volume measurement methods examined can accurately measure orbital volume, although atlas-based and model-based methods seem to be more user-friendly and less time-consuming. The new model-based technique achieves fully automated segmentation results, whereas all atlas-based segmentations at least required manipulations to the anterior closing. Additionally, model-based segmentation can provide reliable orbital volume measurements when CT image quality is poor.
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Metadaten
Titel
Model-based segmentation in orbital volume measurement with cone beam computed tomography and evaluation against current concepts
verfasst von
Maximilian E. H. Wagner
Nils-Claudius Gellrich
Karl-Ingo Friese
Matthias Becker
Franz-Erich Wolter
Juergen T. Lichtenstein
Marcus Stoetzer
Majeed Rana
Harald Essig
Publikationsdatum
01.01.2016
Verlag
Springer Berlin Heidelberg
Erschienen in
International Journal of Computer Assisted Radiology and Surgery / Ausgabe 1/2016
Print ISSN: 1861-6410
Elektronische ISSN: 1861-6429
DOI
https://doi.org/10.1007/s11548-015-1228-8

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