Title :
Performance Evaluation of Displacement Estimators for Real-Time Ultrasonic Strain and Blood Flow Imaging With Improved Spatial Resolution
Author :
Eder, Andreas ; Arnold, Thomas ; Kargel, Christian
Author_Institution :
Carinthia Univ. of Appl. Sci., Klagenfurt
Abstract :
Ultrasonic strain and blood flow imaging has great potential to improve early tumor detection. Both methods have the same task of estimating echo signal displacements. To be able to resolve tissue stiffness and vascularity of tumors while they are still small, spatial resolution must be improved. Moreover, ultrasonic real-time imaging is vital in clinical practice. In this paper, we evaluate the estimation performances of one novel and several established displacement estimators with real-time capability and compare these with results from cross-correlation-based standard estimators when echo signals that are typically available with a commercial ultrasound scanner set to yield the highest spatial resolution are used. Estimation errors are investigated as a function of sampling rate, signal-to-noise ratio, displacement and strain magnitudes, and frequency-dependent tissue attenuation. Results are from simulations using the FIELD II program to generate ultrasonic echo signals and tissue-mimicking phantom experiments using a Voluson 730 medical ultrasound scanner (GE medical systems Kretztechnik, Austria) that is equipped with a digital research interface that enables the export of beam-formed radio frequency echo data.
Keywords :
biomechanics; biomedical ultrasonics; haemodynamics; tumours; FIELD II program; beam-formed radio frequency echo data; blood flow imaging; cross-correlation-based standard estimators; digital research interface; displacement estimators; estimation errors; frequency-dependent tissue attenuation; real-time ultrasonic strain imaging; signal-to-noise ratio; spatial resolution; tissue stiffness; tissue-mimicking phantom experiments; tumor vascularity; ultrasonic echo signals; ultrasound scanner; Biomedical imaging; Blood flow; Capacitive sensors; High-resolution imaging; Neoplasms; Signal resolution; Spatial resolution; Tumors; Ultrasonic imaging; Yield estimation; Blood flow imaging; displacement estimation; signal and image processing; strain imaging; tumor detection; ultrasound imaging;
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
DOI :
10.1109/TIM.2007.899863