Complex Pseudo 3D Auto-Correlation Network for High-Quality Single-Angle Plane Wave Imaging

Chujian Ren, Xiaolei Qu, Zihao Wang, Xiaorui Wei, Shangchun Fan, Dezhi Zheng, Shuai Wang, Weiwei Xing, Wanchen Zhao*

*Corresponding author for this work

Research output: Contribution to journalConference articlepeer-review

Abstract

Deep learning has shown potential as an effective beamformer for improving the image quality of plane wave imaging (PWI). But most existing deep learning methods cannot directly handle the complex in-phase and quadrature (IQ) data. And noise in ultrasound signals would significantly damage the performance of regular convolution networks. To address these challenges, we proposed the Complex Pseudo 3D Auto-Correlation Network (CP3AN) which combined complex convolution and pseudo 3D auto-correlation blocks (P3AB) to directly map delayed IQ data from 0°plane wave into PWI pixels. The complex convolution could fully utilize the envelope and phase information of IQ data, while the P3AB used 1D convolution to extract noise in channel and space dimensions, allowing the network to prioritize valid signals with extremely low computational cost. We evaluated the performance of CP3AN through numerical simulations, phantom experiments, and in-vivo experiments, which showed comparable metrics with minimum variance (MV), including contrast (CR), contrast-to-noise ratio (CNR), generalized contrast-to-noise ratio (GCNR), lateral, and axial full-width half maximum (FWHM) at -9.60 dB, 1.12, 0.65, 319 um, and 344 um, respectively. The CP3AN achieved a low computational cost of 0.11 M floating-point operations (FLOPs), significantly lower than the MV or other compared deep learning-based methods. Our proposed method provided a promising solution for improving single-angle PWI imaging, particularly in situations where high frame rates are necessary.

Original languageEnglish
Article number012025
JournalJournal of Physics: Conference Series
Volume2822
Issue number1
DOIs
Publication statusPublished - 2024
Externally publishedYes
Event2023 International Congress on Ultrasonics, ICU Beijing 2023 - Beijing, China
Duration: 18 Sept 202321 Sept 2023

Keywords

  • Adaptive beamforming
  • Deep learning
  • Plane wave imaging
  • Ultrasound

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