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Image reconstruction for photoacoustic scanning of tissue structures

机译:图像重建,用于组织结构的光声扫描

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摘要

Photoacoustic signal generation can be used for a new medical tomographic technique. This makes it possible to image optically different structures, such as the (micro)vascular system in tissues, by use of a transducer array for the detection of laser-generated wide-bandwidth ultrasound. A time-domain delay-and-sum focused beam-forming technique is used to locate the photoacoustic sources in the sample. To characterize the transducer response, simulations have been performed for a wide variety of parameter values and have been verified experimentally. With these data the weight factors for the spectrally and temporally filtered sensor signals are determined in order to optimize the signal-to-noise ratio of the beam former. The imaging algorithm is investigated by simulations and experiments. With this algorithm, for what is to our knowledge the first time, the three-dimensional photoacoustic imaging of complex optically absorbing structures located in a highly diffuse medium is demonstrated. When 200-μm-diameter hydrophone elements are used, the depth resolution is better than 20 μm, and the lateral resolution is better than 200 μm, independent of the depth for our range of imaging (to ~6 mm), Reduction of the transducer diameters and adaptation of the weight factors, at the cost of some increase of the noise level, will further improve the lateral resolution. The synthetic aperture algorithm used has been shown to be suitable for the new technique of photoacoustic tissue scanning.
机译:光声信号产生可用于新的医学层析成像技术。通过使用换能器阵列检测激光产生的宽带超声,这可以对光学上不同的结构(例如组织中的(微)血管系统)成像。时域延迟和求和聚焦波束形成技术用于在样品中定位光声源。为了表征换能器响应,已经对各种参数值进行了仿真,并已通过实验进行了验证。利用这些数据,确定了在频谱和时间上经过滤波的传感器信号的权重因子,以优化波束形成器的信噪比。通过仿真和实验研究了成像算法。利用这种算法,就我们所知,这是首次证明了位于高扩散介质中的复杂光学吸收结构的三维光声成像。当使用直径为200μm的水听器元件时,深度分辨率优于20μm,横向分辨率优于200μm,而与我们成像范围(至〜6 mm)的深度无关。直径和权重因子的调整会以一定程度的噪声水平为代价,进一步提高横向分辨率。已经证明,所使用的合成孔径算法适用于光声组织扫描的新技术。

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