4.6 Article

Dual-Array Passive Acoustic Mapping for Cavitation Imaging With Enhanced 2-D Resolution

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TUFFC.2020.3019573

关键词

Imaging; Electron tubes; Ultrasonic imaging; Acoustics; Arrays; Transducers; Array signal processing; Cavitation; passive acoustic mapping (PAM); resolution; robustness; sparsity

资金

  1. NIHR Oxford Biomedical Research Centre
  2. Engineering and Physical Sciences Research Councils through the OxCD3 Program [EP/L024012/1]
  3. Ultraspine Project [EP/K020757/1]
  4. EPSRC [EP/K021729/1, EP/L024012/1] Funding Source: UKRI

向作者/读者索取更多资源

Passive acoustic mapping (PAM) techniques have been developed to detect and quantify cavitation activity during therapeutic ultrasound procedures. The use of a pair of orthogonally oriented diagnostic arrays has the potential to offer benefits in improving resolution and monitoring capability.
Passive acoustic mapping (PAM) techniques have been developed for the purposes of detecting, localizing, and quantifying cavitation activity during therapeutic ultrasound procedures. Implementation with conventional diagnostic ultrasound arrays has allowed planar mapping of bubble acoustic emissions to be overlaid with B-mode anatomical images, with a variety of beamforming approaches providing enhanced resolution at the cost of extended computation times. However, no passive signal processing techniques implemented to date have overcome the fundamental physical limitation of the conventional diagnostic array aperture that results in point spread functions with axial/lateral beamwidth ratios of nearly an order of magnitude. To mitigate this problem, the use of a pair of orthogonally oriented diagnostic arrays was recently proposed, with potential benefits arising from the substantially expanded range of observation angles. This article presents experiments and simulations intended to demonstrate the performance and limitations of the dual-array system concept. The key finding of this study is that source pair resolution of better than 1 mm is now possible in both dimensions of the imaging plane using a pair of 7.5-MHz center frequency conventional arrays at a distance of 7.6cm. With an eye toward accelerating computations for real-time applications, channel count reductions of up to a factor of eight induce negligible performance losses. Modest sensitivities to sound speed and relative array position uncertainties were identified, but if these can be kept on the order of 1% and 1 mm, respectively, then the proposed methods offer the potential for a step improvement in cavitation monitoring capability.

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