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辐射剂量学中辐射诱发声成像的分辨率限制。

Resolution limits for radiation-induced acoustic imaging forradiation dosimetry.

机构信息

Department of Radiological Sciences, University of California, Irvine, CA 92697, United States of America.

Department of Biomedical Engineering, University of California, Irvine, CA 92697, United States of America.

出版信息

Phys Med Biol. 2024 Aug 6;69(16). doi: 10.1088/1361-6560/ad64b9.

Abstract

Radiation-induced acoustic (RA) computed tomographic (RACT) imaging is being thoroughly explored for radiation dosimetry. It is essential to understand how key machine parameters like beam pulse, size, and energy deposition affect image quality in RACT. We investigate the intricate interplay of these parameters and how these factors influence dose map resolution in RACT.We first conduct an analytical assessment of time-domain RA signals and their corresponding frequency spectra for certain testcases, and computationally validate these analyses. Subsequently, we simulated a series of x-ray-based RACT (XACT) experiments and compared the simulations with experimental measurements.reconstruction studies have also been conducted to demonstrate the resolution limits imposed by the temporal pulse profiles on RACT. XACT experiments were performed using clinical machines and the reconstructions were analyzed for resolution capabilities.Our paper establishes the theory for predicting the time- and frequency-domain behavior of RA signals. We illustrate that the frequency content of RA signal is not solely dependent on the spatial energy deposition characteristics but also on the temporal features of radiation. The same spatial energy deposition through a Gaussian pulse and a rectangular pulse of equal pulsewidths results in different frequency spectra of the RA signals. RA signals corresponding to the rectangular pulse exhibit more high-frequency content than their Gaussian pulse counterparts and hence provide better resolution in the reconstructions. XACT experiments with ∼3.2 us and ∼4 us rectangular radiation pulses were performed, and the reconstruction results were found to correlate well with theresults.Here, we discuss the inherent resolution limits for RACT-based radiation dosimetric systems. While our study is relevant to the broader community engaged in research on photoacoustics, x-ray-acoustics, and proto/ionoacoustics, it holds particular significance for medical physics researchers aiming to set up RACT for dosimetry and radiography using clinical radiation machines.

摘要

辐射诱导声(RA)计算机断层(RACT)成像正在被深入探索用于辐射剂量学。了解关键机器参数(如束脉冲、大小和能量沉积)如何影响 RACT 中的图像质量是至关重要的。我们研究了这些参数的复杂相互作用以及这些因素如何影响 RACT 中的剂量图分辨率。

我们首先对某些测试案例的时域 RA 信号及其相应的频谱进行了分析评估,并对这些分析进行了计算验证。随后,我们模拟了一系列基于 X 射线的 RACT(XACT)实验,并将模拟结果与实验测量结果进行了比较。还进行了重建研究,以证明 RACT 中时间脉冲轮廓对分辨率的限制。使用临床机器进行了 XACT 实验,并对重建结果进行了分辨率能力分析。

我们的论文建立了预测 RA 信号的时域和频域行为的理论。我们表明,RA 信号的频率内容不仅取决于空间能量沉积特性,还取决于辐射的时间特征。通过高斯脉冲和具有相等脉冲宽度的矩形脉冲进行相同的空间能量沉积会导致 RA 信号的不同频谱。与高斯脉冲相比,矩形脉冲对应的 RA 信号具有更多的高频内容,因此在重建中提供更好的分辨率。进行了具有约 3.2 μs 和 4 μs 矩形辐射脉冲的 XACT 实验,重建结果与结果相关性良好。

在这里,我们讨论了基于 RACT 的辐射剂量测量系统的固有分辨率限制。虽然我们的研究与从事光声、X 射线声和原/离子声研究的更广泛的社区有关,但对于旨在使用临床辐射机器为剂量学和放射照相设置 RACT 的医学物理研究人员来说,它具有特殊的意义。

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