X-Ray Reconstruction of Moving Morphology (XROMM): Precision, Accuracy and Applications in Comparative Biomechanics Research

被引:385
作者
Brainerd, Elizabeth L. [1 ]
Baier, David B. [1 ,2 ]
Gatesy, Stephen M. [1 ]
Hedrick, Tyson L. [3 ]
Metzger, Keith A. [1 ,4 ]
Gilbert, Susannah L. [5 ,6 ]
Crisco, Joseph J. [5 ,6 ]
机构
[1] Brown Univ, Dept Ecol & Evolutionary Biol, Providence, RI 02912 USA
[2] Providence Coll, Dept Biol, Providence, RI 02918 USA
[3] Univ N Carolina, Dept Biol, Chapel Hill, NC USA
[4] Hofstra Univ, Dept Sci Educ, Sch Med N Shore LIJ Hlth, Hempstead, NY 11550 USA
[5] Brown Univ, Warren Alpert Med Sch, Dept Orthopaed, Providence, RI 02912 USA
[6] Rhode Isl Hosp, Providence, RI USA
来源
JOURNAL OF EXPERIMENTAL ZOOLOGY PART A-ECOLOGICAL AND INTEGRATIVE PHYSIOLOGY | 2010年 / 313A卷 / 05期
基金
美国国家科学基金会;
关键词
GLENOHUMERAL JOINT KINEMATICS; KNEE REPLACEMENT KINEMATICS; AAPM/RSNA PHYSICS TUTORIAL; IN-VIVO MEASUREMENT; ANALYSIS SYSTEM; MINIATURE PIGS; MOVEMENT; FLUOROSCOPY; MASTICATION; MOTION;
D O I
10.1002/jez.589
中图分类号
Q95 [动物学];
学科分类号
071002 ;
摘要
X-Ray Reconstruction of Moving Morphology (XROMM) comprises a set of 3D X-ray motion analysis techniques that merge motion data from in vivo X-ray videos with skeletal morphology data from bone scans into precise and accurate animations of 3D bones moving in 3D space. XROMM methods include: (1) manual alignment (registration) of bone models to video sequences, i.e., Scientific Rotoscoping; (2) computer vision-based autoregistration of bone models to biplanar X-ray videos; and (3) marker-based registration of bone models to biplanar X-ray videos. Here, we describe a novel set of X-ray hardware, software, and workflows for marker-based XROMM. Refurbished C-arm fluoroscopes retrofitted with high-speed video cameras offer a relatively inexpensive X-ray hardware solution for comparative biomechanics research. Precision for our biplanar C-arm hardware and analysis software, measured as the standard deviation of pairwise distances between 1 mm tantalum markers embedded in rigid objects, was found to be +/- 0.046 mm under optimal conditions and +/- 0.084 mm under actual in vivo recording conditions. Mean error in measurement of a known distance between two beads was within the 0.01 mm fabrication tolerance of the test object, and mean absolute error was 0.037 mm. Animating 3D bone models from sets of marker positions (XROMM animation) makes it possible to study skeletal kinematics in the context of detailed bone morphology. The biplanar fluoroscopy hardware and computational methods described here should make XROMM an accessible and useful addition to the available technologies for studying the form, function, and evolution of vertebrate animals. J. Exp. Zool. 313A:262-279, 2010. (C) 2010 Wiley-Liss, Inc.
引用
收藏
页码:262 / 279
页数:18
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