Determination of three-dimensional positions of known sparse objects from a single projection

被引:29
作者
Hoffmann, KR
Esthappan, J
机构
[1] Kurt Rossmann Labs. Radiologic I., Department of Radiology, University of Chicago, Chicago
关键词
D O I
10.1118/1.597938
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
A new technique is developed for accurate determination of the three-dimensional position and orientation of known sparse objects, e.g., a configuration of points, from a single-perspective projection. In this technique, a computer model of the known object is translated and rotated so as to align it optimally in a least-squares sense with the projection lines connecting the image points with the focal spot by using a modification of the projection-Procrustes technique. The translational and rotational adjustments are repeated iteratively until the angular change between iterations is less than 0.25 degrees. Simulations indicate that, for rms input image errors of 0.03 cm, the three-dimensional positions and orientations can be determined to within approximately 0.2 cm and 0.3 degrees for a wide range of initially guessed positions and orientations, and positions can be determined with an accuracy of approximately 0.3 cm for objects having as few as four points. In phantom experiments, three-dimensional positions and orientations of a cube phantom were reproducibly determined to within 0.23 cm and 0.13 degrees. The entire calculation requires only 10 s on a VAX 3500 to converge to the solution. The accuracy, precision, and speed of the technique indicate that it will be a useful tool for determination of three-dimensional positions and orientations of known sparse objects. (C) 1997 American Association of Physicists in Medicine.
引用
收藏
页码:555 / 564
页数:10
相关论文
共 22 条
[1]   Automated localization of the prostate at the time of treatment using implanted radiopaque markers: Technical feasibility [J].
Balter, JM ;
Lam, KL ;
Sandler, HM ;
Littles, JF ;
Bree, RL ;
TenHaken, RK .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1995, 33 (05) :1281-1286
[2]  
Barba J., 1987, Proceedings of the SPIE - The International Society for Optical Engineering, V767, P441
[3]   Computer assisted coronary intervention: 3D reconstruction and determination of optimal views [J].
Chen, SJ ;
Hoffmann, KR ;
Carroll, JD .
COMPUTERS IN CARDIOLOGY 1996, 1996, :117-120
[4]   KNOWLEDGE-BASED SYSTEM FOR THE 3-DIMENSIONAL RECONSTRUCTION OF BLOOD-VESSELS FROM 2 ANGIOGRAPHIC PROJECTIONS [J].
DELAERE, D ;
SMETS, C ;
SUETENS, P ;
MARCHAL, G ;
VANDEWERF, F .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1991, 29 (06) :NS27-NS36
[5]   PROPAGATION AND REDUCTION OF ERROR IN 3-DIMENSIONAL STRUCTURE DETERMINED FROM BIPLANE VIEWS OF UNKNOWN ORIENTATION [J].
FENCIL, LE ;
METZ, CE .
MEDICAL PHYSICS, 1990, 17 (06) :951-961
[6]   BASIC IMAGING PROPERTIES OF A LARGE IMAGE INTENSIFIER TV DIGITAL CHEST RADIOGRAPHIC SYSTEM [J].
FUJITA, H ;
DOI, K ;
MACMAHON, H ;
KUME, Y ;
GIGER, ML ;
HOFFMANN, KR ;
KATAFUCHI, T ;
OHARA, K ;
CHAN, HP .
INVESTIGATIVE RADIOLOGY, 1987, 22 (04) :328-335
[7]   DETERMINATION OF 3D IMAGING GEOMETRY AND OBJECT CONFIGURATIONS FROM 2 BIPLANE VIEWS - AN ENHANCEMENT OF THE METZ-FENCIL TECHNIQUE [J].
HOFFMANN, KR ;
METZ, CE ;
CHEN, Y .
MEDICAL PHYSICS, 1995, 22 (08) :1219-1227
[8]   Evaluation of the reliability of calculated 3D vascular trees and their alignment with other views [J].
Hoffmann, KR ;
Chen, SY ;
Esthappan, J ;
Williams, BB ;
Metz, CE ;
Harauchi, H ;
Carroll, JD .
COMPUTERS IN CARDIOLOGY 1996, 1996, :113-116
[9]   A simple technique for calibrating imaging geometries [J].
Hoffmann, KR ;
Esthappan, J ;
Li, SD ;
Pelizzari, CA .
PHYSICS OF MEDICAL IMAGING: MEDICAL IMAGING 1996, 1996, 2708 :371-376
[10]   Pincushion correction techniques and their effects on calculated 3D positions and imaging geometries [J].
Hoffmann, KR ;
Chen, Y ;
Esthappan, J ;
Chen, SY ;
Carroll, JD .
MEDICAL IMAGING 1996: IMAGE PROCESSING, 1996, 2710 :462-467