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©2014 Baishideng Publishing Group Inc.
World J Radiol. Aug 28, 2014; 6(8): 607-612
Published online Aug 28, 2014. doi: 10.4329/wjr.v6.i8.607
Published online Aug 28, 2014. doi: 10.4329/wjr.v6.i8.607
Ref. | Factors |
Nackaerts et al[4] | Variation in the devices |
Image-acquisition settings | |
Relationship between the object evaluated and FOV | |
The position held by the region of interest | |
Mah et al[13] | Variation in the devices |
Reeves et al[15] | Abrupt changes of density in the object |
Katsumata et al[16] | Projection data discontinuity-related effect |
Variation in the CBCT devices | |
Image-acquisition settings | |
Relationship between the object evaluated and FOV | |
Bryant et al[17] | Projection data discontinuity-related effect |
Relationship between the object evaluated and FOV | |
The amount of exomass | |
Katsumata et al[18] | The dimensions of the FOV |
The amount of exomass | |
Pauwels et al[39] | X-ray beam hardening effect |
Projection data discontinuity-related effect | |
Variation in the devices | |
Schulze et al[41] | Abrupt changes of density in the object |
X-ray beam hardening effect | |
Scattered radiation | |
Pauwels et al[42] | Abrupt changes of density in the object |
Goodsitt et al[43] | X-ray beam hardening effect |
Scattered radiation | |
Liu et al[50] | The position held by the region of interest |
- Citation: Campos MJDS, de Souza TS, Mota Júnior SL, Fraga MR, Vitral RWF. Bone mineral density in cone beam computed tomography: Only a few shades of gray. World J Radiol 2014; 6(8): 607-612
- URL: https://www.wjgnet.com/1949-8470/full/v6/i8/607.htm
- DOI: https://dx.doi.org/10.4329/wjr.v6.i8.607