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OPUS - Optoacoustic imaging combined with conventional ultrasound for breast cancer detection

机译:OPUS-结合常规超声的光声成像技术可用于乳腺癌检测

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Besides x-ray imaging, sonography is the most common method for breast cancer screening. The intention of our work is to develop optoacoustical imaging as an add-on to a conventional system. While ultrasound imaging reveals acoustical properties of tissue, optoacoustics generates an image of the distribution of optical absorption. Hence, it can be a valuable addition to sonography, because acoustical properties of different tissues show only a slight variation whereas the optical properties may differ strongly. Additionally, optoacoustics gives access to physiological parameters, like oxygen saturation of blood. For the presented work, we combine a conventional ultrasound system to a 100 Hz laser. The laser system consists of a Nd:YAG-laser at a wavelength of 532 nm with 7 ns pulse duration, coupled to a tunable Optical Parametric Oscillator (OPO) with a tuning rage from 680 nm to 2500 nm. The tunable laser source allows the selection of wavelengths which compromising high spectral information content with high skin transmission. The laser pulse is delivered fiber-optically to the ultrasound transducer and coupled into the acoustical field of view. Homogeneous illumination is crucial in order to achieve unblurred images. Furthermore the maximum allowed pulse intensities in accordance with standards for medical equipment have to be met to achieve a high signal to noise ration. The ultrasound instrument generates the trigger signal which controls the laser pulsing in order to apply ultrasound instrument's imaging procedures without major modifications to generate an optoacoustic image. Detection of the optoacoustic signal as well as of the classical ultrasound signal is carried out by the standard medical ultrasound transducer. The characterization of the system, including quantitative measurements, performed on tissue phantoms, is presented. These phantoms have been specially designed regarding their acoustical as well as their optical properties.
机译:除X射线成像外,超声检查是乳腺癌筛查的最常用方法。我们的工作目的是开发光声成像,以作为常规系统的附加组件。超声成像显示组织的声学特性时,光声会生成光吸收分布的图像。因此,这可能是超声检查的宝贵补充,因为不同组织的声学特性仅表现出细微的变化,而光学特性却可能有很大差异。此外,光声技术可以获取生理参数,例如血液中的氧饱和度。对于介绍的工作,我们将传统的超声系统与100 Hz激光相结合。激光系统由波长为532 nm的Nd:YAG激光和7 ns的脉冲持续时间组成,并耦合到可调光参量振荡器(OPO),其调谐范围为680 nm至2500 nm。可调激光源允许选择以高皮肤透射率损害高光谱信息含量的波长。激光脉冲通过光纤传输到超声换能器并耦合到声场中。均质照明对于获得不模糊的图像至关重要。此外,必须满足医疗设备标准所允许的最大脉冲强度,以实现高信噪比。超声仪器产生触发信号,该信号控制激光脉冲,以便在不进行重大修改的情况下应用超声仪器的成像程序以产生光声图像。光声信号以及经典超声信号的检测是通过标准的医学超声换能器进行的。介绍了系统的特征,包括对组织体模进行的定量测量。这些体模已针对其声学特性和光学特性进行了专门设计。

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