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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >A simulation study on the quantitative assessment of tissue microstructure with photoacoustics
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A simulation study on the quantitative assessment of tissue microstructure with photoacoustics

机译:光声定量评估组织微结构的模拟研究

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A detailed derivation of a quantity, defined as the acoustic power per unit solid angle far from the illuminated volume divided by the intensity of the incident light beam and termed as differential photoacoustic (PA) cross section, is presented. The expression for the differential PA cross section per unit absorbing volume retains two terms, namely, the coherent and the incoherent parts. The second part based on a correlation model can be employed to analyze the PA signal power spectrum for tissue characterization. The performances of the fluid sphere, Gaussian, and exponential correlation models in assessing the mean size and the variance in the optical absorption coefficients of absorbers were investigated by performing in silico experiments. It was possible to evaluate diameters of solid spherical absorbers with radii ≥ 20 μm with an accuracy of 10% for an analysis bandwidth of 5 to 50 MHz using the first two correlation models. The accuracy of estimation was about 22% for fluid spheres mimicking erythrocytes for the third correlation model for an analysis bandwidth of 5 to 100 MHz. The extracted values of average variance in the optical absorption coefficients demonstrated good correlation with the nominal values. This study suggests that the method presented here may be developed as a potential tissue characterization tool.
机译:给出了量的详细推导,该量定义为远离照明体积的每单位立体角的声功率除以入射光束的强度,并称为微分光声(PA)截面。每单位吸收体积的差分PA横截面的表达式保留了两项,即相干部分和非相干部分。基于相关模型的第二部分可用于分析PA信号功率谱以进行组织表征。通过计算机模拟实验研究了流体球体,高斯模型和指数相关模型在评估吸收体的平均尺寸和光吸收系数方差方面的性能。使用前两个相关模型,可以在5到50 MHz的分析带宽下以10%的精度评估半径≥20μm的固体球形吸收体的直径。对于第三相关模型,在5至100 MHz的分析带宽下,模拟红细胞的流体球的估计准确性约为22%。提取出的光吸收系数的平均方差值表明与标称值具有良好的相关性。这项研究表明,此处介绍的方法可能会发展为潜在的组织表征工具。

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