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Ultrasound Autofocusing: Common Midpoint Phase Error Optimization via Differentiable Beamforming

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arxiv 2410.03008 v3 pith:RR2J62HQ submitted 2024-10-03 physics.med-ph eess.IV

Ultrasound Autofocusing: Common Midpoint Phase Error Optimization via Differentiable Beamforming

classification physics.med-ph eess.IV
keywords acousticphaseaberrationautofocusingultrasoundvelocitybeamformingcmpe
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In ultrasound imaging, propagation of an acoustic wavefront through heterogeneous media causes phase aberrations that degrade the coherence of the reflected wavefront, leading to reduced image resolution and contrast. Adaptive imaging techniques attempt to correct this phase aberration and restore coherence, leading to improved focusing of the image. We propose an autofocusing paradigm for aberration correction in ultrasound imaging by fitting an acoustic velocity field to pressure measurements, via optimization of the common midpoint phase error (CMPE), using a straight-ray wave propagation model for beamforming in diffusely scattering media. We show that CMPE induced by heterogeneous acoustic velocity is a robust measure of phase aberration that can be used for acoustic autofocusing. CMPE is optimized iteratively using a differentiable beamforming approach to simultaneously improve the image focus while estimating the acoustic velocity field of the interrogated medium. The approach relies solely on wavefield measurements using a straight-ray integral solution of the two-way time-of-flight without explicit numerical time-stepping models of wave propagation. We demonstrate method performance through in silico simulations, in vitro phantom measurements, and in vivo mammalian models, showing practical applications in distributed aberration quantification, correction, and velocity estimation for medical ultrasound autofocusing.

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