Real-time freehand 3D ultrasound calibration

被引:36
作者
Hsu, Po-Wei [1 ]
Prager, Richard W. [1 ]
Gee, Andrew H. [1 ]
Treece, Graham M. [1 ]
机构
[1] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England
关键词
freehand three-dimensional ultrasound; calibration; real-time;
D O I
10.1016/j.ultrasmedbio.2007.07.020
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Z-fiducial phantoms allow three-dimensional ultrasound probe calibration with a single B-scan. One of the main difficulties in using this phantom is the need for reliable segmentation of the wires in the ultrasound images, which necessitates manual intervention. In this article, we have shown how we can solve this problem by mounting a thin rubber membrane on top of the phantom. The membrane is segmented automatically and the wires can be easily located as they are at known positions relative to the membrane. This enables us to segment the wires automatically at the full PAL frame rate of 25Hz, to produce calibrations in real-time, while achieving accuracies similar to those reported in the literature. We have also devised a technique to improve the estimation of the elevational offset (calibration parameter) by capturing a few images of the planar membrane. If spatial calibration is known, fully automatic wire segmentation allows the fiducials to be tracked in real-time. This also enables temporal calibration to be performed in real-time as the probe is moved away from the phantom. We have evaluated the performance of our phantom by calibrating a probe at 8 cm and 15 cm depth. The precision of the calibrations are 0.7 mm and 1.2 mm, respectively. The point reconstruction accuracies of fiducial points provided by the same Z-phantom are slightly below 1.5 mm. The point reconstruction accuracies obtained by scanning the end of a wire tip are 2.5 mm and 3.0 mm. These results match the accuracies achieved in the literature. It takes approximately 2 min to set up the experiment, submerge the phantom in the water bath, locate the phantom in space with a pointer and capture six images of the planar membrane. After this, spatial calibration can be performed in less than a second. Temporal calibration can be completed in approximately 3 s. (E-mail: pwh24@cam.ac.uk) (C) 2008 Published by Elsevier Inc. on behalf of the World Federation for Ultrasound in Medicine & Biology.
引用
收藏
页码:239 / 251
页数:13
相关论文
共 50 条
[31]   Real-time 2D to 3D video conversion [J].
Ianir Ideses ;
Leonid P. Yaroslavsky ;
Barak Fishbain .
Journal of Real-Time Image Processing, 2007, 2 :3-9
[32]   Real-time 2D to 3D video conversion [J].
Ideses, Ianir ;
Yaroslavsky, Leonid P. ;
Fishbain, Barak .
JOURNAL OF REAL-TIME IMAGE PROCESSING, 2007, 2 (01) :3-9
[33]   Real-time cylindrical curvilinear 3-D ultrasound imaging [J].
Pua, EC ;
Yen, JT ;
Smith, SW .
ULTRASONIC IMAGING, 2003, 25 (03) :137-150
[34]   Robotically assisted ablative treatment guided by freehand 3D ultrasound [J].
Boctor, EM ;
Webster, RJ ;
Choti, MA ;
Taylor, RH ;
Fichtinger, G .
CARS 2004: COMPUTER ASSISTED RADIOLOGY AND SURGERY, PROCEEDINGS, 2004, 1268 :503-508
[35]   Automatic Near Real-Time Evaluation of 3D Ultrasound Scan Adequacy for Developmental Dysplasia of the Hip [J].
Paserin, Olivia ;
Mulpuri, Kishore ;
Cooper, Anthony ;
Hodgson, Antony J. ;
Abugharbieh, Rafeef .
COMPUTER ASSISTED AND ROBOTIC ENDOSCOPY AND CLINICAL IMAGE-BASED PROCEDURES, 2017, 10550 :124-132
[36]   A method for the calibration of 3D ultrasound transducers [J].
Hastenteufel, M ;
Mottl-Link, S ;
Wolf, I ;
de Simone, R ;
Meinzer, HP .
MEDICAL IMAGING 2003: VISUALIZATION, IMAGE-GUIDED PROCEDURES, AND DISPLAY, 2003, 5029 :231-238
[37]   An Evolutionary Real-Time 3D Route Planner for Aircraft [J].
Zheng Changwen Ding Mingyue Zhou ChengpingInstitute of Pattern Recognition and Artificial IntelligenceState Education Commission Key Laboratory for Image Processing and Intelligent Control Huazhong University of Science and Technology Wuhan P R China .
JournalofSystemsEngineeringandElectronics, 2003, (01) :47-53
[38]   REAL-TIME 3D BODY RECONSTRUCTION FOR IIYIMERSIVE TV [J].
Waizenegger, W. ;
Feldmann, I. ;
Schreer, O. ;
Kauff, P. ;
Eisert, P. .
2016 IEEE INTERNATIONAL CONFERENCE ON IMAGE PROCESSING (ICIP), 2016, :360-364
[39]   REAL-TIME DEPTH ESTIMATION FOR IMMERSIVE 3D VIDEOCONFERENCING [J].
Feldmann, I. ;
Waizenegger, W. ;
Atzpadin, N. ;
Schreer, O. .
2010 3DTV-CONFERENCE: THE TRUE VISION - CAPTURE, TRANSMISSION AND DISPLAY OF 3D VIDEO (3DTV-CON 2010), 2010,
[40]   REAL-TIME DEPTH DIFFUSION FOR 3D SURFACE RECONSTRUCTION [J].
Varadarajan, Karthik Mahesh ;
Vincze, Markus .
2010 IEEE INTERNATIONAL CONFERENCE ON IMAGE PROCESSING, 2010, :4149-4152