Comparison of shift estimation strategies in spectral elastography

被引:22
作者
Hoyt, K
Forsberg, F [1 ]
Ophir, J
机构
[1] Thomas Jefferson Univ, Dept Radiol, Philadelphia, PA 19107 USA
[2] Univ Rochester, Dept Elect Engn, Rochester, NY 14627 USA
[3] Univ Texas, Sch Med, Dept Diagnost & Intervent Imaging, Houston, TX 77030 USA
关键词
elasticity imaging; spectral elastography; strain filter; subsample estimation; ultrasound imaging;
D O I
10.1016/j.ultras.2005.08.006
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
This paper compares the performance of various spectral shift estimators for use in spectral elastography, namely, the normalized cross-correlation (NCC), sum squared difference (SSD) and sum absolute difference (SAD). Simulation and experimental results demonstrate that the spectral SSD-based elastographic method exhibits no marked difference in performance compared to the more computationally costly NCC-based approach, which has conventionally been the preferred estimator in spectral elastography. The spectral SAD-based strain estimator, despite being computationally less burdening, failed to exhibit performance comparable to that of the NCC- and SSD-based techniques. Furthermore, though spectral subsample estimation techniques using a cosine-fit interpolation method outperformed that of the parabolic-fit method in terms of both reduced bias errors and standard deviations, the latter was analyzed in this study due to computational simplicity. The role of spectral density was evaluated without and with parabolic-based subsample interpolation. Based on minimizing computational complexity, it is concluded that a (low density) spectral SSD strain estimator coupled with parabolic-based subsample estimation is the preferred choice for spectral elastography. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:99 / 108
页数:10
相关论文
共 21 条
[1]   Adaptive spectral strain estimators for elastography [J].
Alam, SK ;
Lizzi, FL ;
Varghese, T ;
Feleppa, EJ ;
Ramachandran, S .
ULTRASONIC IMAGING, 2004, 26 (03) :131-149
[2]   An adaptive strain estimator for elastography [J].
Alam, SK ;
Ophir, J ;
Konofagou, EE .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1998, 45 (02) :461-472
[3]   METHODS FOR ESTIMATION OF SUBSAMPLE TIME DELAYS OF DIGITIZED ECHO SIGNALS [J].
CESPEDES, I ;
HUANG, Y ;
OPHIR, J ;
SPRATT, S .
ULTRASONIC IMAGING, 1995, 17 (02) :142-171
[4]   REDUCTION OF IMAGE NOISE IN ELASTOGRAPHY [J].
CESPEDES, I ;
OPHIR, J .
ULTRASONIC IMAGING, 1993, 15 (02) :89-102
[5]   Elastography of breast lesions: Initial clinical results [J].
Garra, BS ;
Cespedes, EI ;
Ophir, J ;
Spratt, SR ;
Zuurbier, RA ;
Magnant, CM ;
Pennanen, MF .
RADIOLOGY, 1997, 202 (01) :79-86
[6]   Phantom materials for elastography [J].
Hall, TJ ;
Bilgen, M ;
Insana, MF ;
Krouskop, TA .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1997, 44 (06) :1355-1365
[7]   Investigation of parametric spectral estimation techniques for elasticity imaging [J].
Hoyt, K ;
Forsberg, F ;
Ophir, J .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2005, 31 (08) :1109-1121
[8]  
HOYT K, 2005, THESIS DREXEL U
[9]   Three-dimensional tissue motion and its effect on image noise in elastography [J].
Kallel, F ;
Ophir, J .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1997, 44 (06) :1286-1296
[10]   Power spectral strain estimators in elastography [J].
Konofagou, EE ;
Varghese, T ;
Ophir, J ;
Alam, SK .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1999, 25 (07) :1115-1129