Title :
A model of distributed phase aberration for deblurring phase estimated from scattering
Author :
Tillett, Jason C. ; Astheimer, Jeffrey P. ; Waag, Robert C.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Rochester, Rochester, NY, USA
Abstract :
Correction of aberration in ultrasound imaging uses the response of a point reflector or its equivalent to characterize the aberration. Because a point reflector is usually unavailable, its equivalent is obtained using statistical methods, such as processing reflections from multiple focal regions in a random medium. However, the validity of methods that use reflections from multiple points is limited to isoplanatic patches for which the aberration is essentially the same. In this study, aberration is modeled by an offset phase screen to relax the isoplanatic restriction. Methods are developed to determine the depth and phase of the screen and to use the model for compensation of aberration as the beam is steered. Use of the model to enhance the performance of the noted statistical estimation procedure is also described. Experimental results obtained with tissue-mimicking phantoms that implement different models and produce different amounts of aberration are presented to show the efficacy of these methods. The improvement in b-scan resolution realized with the model is illustrated. The results show that the isoplanatic patch assumption for estimation of aberration can be relaxed and that propagation-path characteristics and aberration estimation are closely related.
Keywords :
aberrations; acoustic signal processing; biomedical ultrasonics; image restoration; ultrasonic imaging; ultrasonic propagation; ultrasonic scattering; aberration compensation; aberration correction; aberration estimation; b-scan resolution; beam steering; distributed phase aberration; focal region; image deblurring; isoplanatic patch; isoplanatic restriction; offset phase screen; point reflector; propagation path; statistical estimation; tissue-mimicking phantom; ultrasound imaging; ultrasound scattering; Imaging phantoms; Optical reflection; Phase estimation; Scattering; Statistical analysis; Ultrasonic imaging; Algorithms; Artifacts; Computer Simulation; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Models, Biological; Models, Statistical; Phantoms, Imaging; Reproducibility of Results; Scattering, Radiation; Sensitivity and Specificity; Ultrasonography;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2010.1400