A transcranial multiple waves suppression method for plane wave imaging based on Radon transform

•Developed a multiple wave suppression method using enhanced Radon transform for transcranial ultrasound imaging, addressing skull interference complexities.•Demonstrated efficacy in separating intracranial reflections from strong skull reflections, enabling velocity-corrected imaging.•Tackles the c...

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Veröffentlicht in:Ultrasonics 2024-09, Vol.143, p.107405, Article 107405
Hauptverfasser: Pan, Yue, Qiang, Yu, Liang, Wenjie, Huang, Wenyue, Wang, Ningyuan, Wang, Xingying, Zhang, Zhiqiang, Qiu, Weibao, Zheng, Hairong
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container_issue
container_start_page 107405
container_title Ultrasonics
container_volume 143
creator Pan, Yue
Qiang, Yu
Liang, Wenjie
Huang, Wenyue
Wang, Ningyuan
Wang, Xingying
Zhang, Zhiqiang
Qiu, Weibao
Zheng, Hairong
description •Developed a multiple wave suppression method using enhanced Radon transform for transcranial ultrasound imaging, addressing skull interference complexities.•Demonstrated efficacy in separating intracranial reflections from strong skull reflections, enabling velocity-corrected imaging.•Tackles the challenge of wavefield separation in transcranial ultrasound.•Improves the imaging quality and diagnostic accuracy in neurological research and clinical applications. Transcranial ultrasound imaging presents a significant challenge due to the intricate interplay between ultrasound waves and the heterogeneous human skull. The skull’s presence induces distortion, refraction, multiple scattering, and reflection of ultrasound signals, thereby complicating the acquisition of high-quality images. Extracting reflections from the entire waveform is crucial yet exceedingly challenging, as intracranial reflections are often obscured by strong amplitude direct waves and multiple scattering. In this paper, a multiple wave suppression method for ultrasound plane wave imaging is proposed to mitigate the impact of skull interference. Drawing upon prior research, we developed an enhanced high-resolution linear Radon transform using the maximum entropy principle and Bayesian method, facilitating wavefield separation. We detailed the process of wave field separation in the Radon domain through simulation of a model with a high velocity layer. When plane waves emitted at any steering angles, both multiple waves and first arrival waves manifested as distinct energy points. In the brain simulation, we contrasted the characteristic differences between skull reflection and brain-internal signal in Radon domain, and demonstrated that multiples suppression method reduces side and grating lobe levels by approximately 30 dB. Finally, we executed in vitro experiments using a monkey skull to separate weak intracranial reflection signals from strong skull reflections, enhancing the contrast-to-noise ratio by 85 % compared to conventional method using full waveform. This study deeply explores the effect of multiples on effective signal separation, addresses the complexity of wavefield separation, and verifies its efficacy through imaging, thereby significantly advancing ultrasound transcranial imaging techniques.
doi_str_mv 10.1016/j.ultras.2024.107405
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Transcranial ultrasound imaging presents a significant challenge due to the intricate interplay between ultrasound waves and the heterogeneous human skull. The skull’s presence induces distortion, refraction, multiple scattering, and reflection of ultrasound signals, thereby complicating the acquisition of high-quality images. Extracting reflections from the entire waveform is crucial yet exceedingly challenging, as intracranial reflections are often obscured by strong amplitude direct waves and multiple scattering. In this paper, a multiple wave suppression method for ultrasound plane wave imaging is proposed to mitigate the impact of skull interference. Drawing upon prior research, we developed an enhanced high-resolution linear Radon transform using the maximum entropy principle and Bayesian method, facilitating wavefield separation. We detailed the process of wave field separation in the Radon domain through simulation of a model with a high velocity layer. When plane waves emitted at any steering angles, both multiple waves and first arrival waves manifested as distinct energy points. In the brain simulation, we contrasted the characteristic differences between skull reflection and brain-internal signal in Radon domain, and demonstrated that multiples suppression method reduces side and grating lobe levels by approximately 30 dB. Finally, we executed in vitro experiments using a monkey skull to separate weak intracranial reflection signals from strong skull reflections, enhancing the contrast-to-noise ratio by 85 % compared to conventional method using full waveform. 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When plane waves emitted at any steering angles, both multiple waves and first arrival waves manifested as distinct energy points. In the brain simulation, we contrasted the characteristic differences between skull reflection and brain-internal signal in Radon domain, and demonstrated that multiples suppression method reduces side and grating lobe levels by approximately 30 dB. Finally, we executed in vitro experiments using a monkey skull to separate weak intracranial reflection signals from strong skull reflections, enhancing the contrast-to-noise ratio by 85 % compared to conventional method using full waveform. 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When plane waves emitted at any steering angles, both multiple waves and first arrival waves manifested as distinct energy points. In the brain simulation, we contrasted the characteristic differences between skull reflection and brain-internal signal in Radon domain, and demonstrated that multiples suppression method reduces side and grating lobe levels by approximately 30 dB. Finally, we executed in vitro experiments using a monkey skull to separate weak intracranial reflection signals from strong skull reflections, enhancing the contrast-to-noise ratio by 85 % compared to conventional method using full waveform. 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subjects High-resolution linear Radon transform
Plane-wave compounding imaging
Transcranial ultrasound imaging
Wavefield separation
title A transcranial multiple waves suppression method for plane wave imaging based on Radon transform
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