Title :
The influences of ambiguity phase aberration profiles on focusing quality in the very near field-part I: Single range focusing on transmission
Author_Institution :
Telecommun. & Ind. Phys., CSIRO, Sydney, NSW, Australia
Abstract :
Most phase aberration measurement algorithms have an ambiguity for constant and tilted phase aberration profiles. Based on the Fresnel (near field) approximation with single range focusing and the Fraunhofer (far field) approximation, constant and tilted phase aberration profiles change the position of the focal point only and do not influence the image focusing quality. Therefore, ambiguity phase aberration profiles are generally considered to be harmless and ignored in those algorithms and related theoretical analyses. However, Fresnel and Fraunhofer approximations may become invalid under many medical ultrasound imaging situations, e.g., when the imaging field is in the very near field (f-number /spl sim/1). In the very near field, although it is known that constant and tilted phase aberration profiles may degrade the focusing quality, it seems that there is a lack of quantitative analysis results in the literature about their influences, and this is the purpose of the current paper. A quantitative analysis with a very near field approximation is performed for single range focusing on transmission, which is a commonly used transmission focusing method in medical ultrasound imaging. The tolerable levels of constant and tilted phase aberration profiles are derived as a function of the imaging system´s f-number and wavelength. Because some phase aberration measurement algorithms may also have an ambiguity for quadratic phase aberration profiles, they are also included in the analysis. The theoretical results are compared with numerical and simulation results. These results have shown that the influences of tilted and quadratic phase-aberration profiles can be ignored only under certain conditions in the very near field.
Keywords :
Fraunhofer diffraction; Fresnel diffraction; aberrations; biomedical ultrasonics; ultrasonic focusing; Fraunhofer approximation; Fresnel approximation; ambiguity phase aberration profiles; constant profiles; focusing quality; imaging field; medical ultrasound imaging; quantitative analysis; single range focusing; tilted profiles; transmission focusing method; very near field; Algorithm design and analysis; Biomedical imaging; Degradation; Focusing; Image analysis; Performance analysis; Phase measurement; Ultrasonic imaging; Ultrasonic variables measurement; Wavelength measurement; Algorithms; Models, Theoretical; Transducers; Ultrasonography;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on