Title :
Tissue attenuation imaging - Synthetic Aperture Focusing versus Spatial Compounding
Author :
Klimonda, Z. ; Litniewski, Jerzy ; Karwat, P. ; Secomski, W. ; Nowicki, Andrzej
Author_Institution :
Dept. of Ultrasound, Inst. of Fundamental Technol. Res., Warsaw, Poland
Abstract :
The long term goal of this research is to develop the system enabling the imaging and quantitative measure of ultrasonic attenuation in tissue. It may support the diagnosis by accurate discrimination of the lesions from normal tissue at the early stage of the disease. The attenuation is estimated from the stochastic ultrasonic backscatter and time/spatial averaging is necessary to achieve reasonable accuracy. However the averaging worsens the spatial resolution. Two techniques of ultrasonic imaging, the Synthetic Aperture Focusing Technique (SAFT) and Spatial Compounding (SC), were applied and compared with respect to the quality of attenuation estimation. The ultrasonic RF data were collected from a tissue mimicking phantom using ultrasonic scanner (Ultrasonix SonixTOUCH). Both acquired echoes-sets were processed in the same way in order to calculate the downshift in a mean frequency fm of the backscatter signal and resulting spatial distribution of attenuation coefficient. Compensation for the diffraction effects was included in the data processing. The RF data obtained with use of the SAFT proved to be more suitable for attenuation estimation.
Keywords :
bioacoustics; biological tissues; biomedical ultrasonics; data analysis; diseases; image resolution; medical image processing; phantoms; ultrasonic absorption; ultrasonic diffraction; ultrasonic scattering; SAFT; Ultrasonix SonixTOUCH; attenuation coefficient spatial distribution; attenuation estimation; backscatter signal; data processing; diffraction effect; disease early stage; echoes-set; lesion discrimination; mean frequency downshift; normal tissue; spatial compounding technique; spatial resolution; stochastic ultrasonic backscatter; synthetic aperture focusing technique; time/spatial averaging; tissue attenuation imaging; tissue mimicking phantom; ultrasonic RF data; ultrasonic attenuation; ultrasonic imaging; ultrasonic scanner; Acoustics; Array signal processing; Attenuation; Estimation; Phantoms; Ultrasonic imaging;
Conference_Titel :
Ultrasonics Symposium (IUS), 2012 IEEE International
Conference_Location :
Dresden
Print_ISBN :
978-1-4673-4561-3
DOI :
10.1109/ULTSYM.2012.0590