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Pulsed holographic system for imaging through spatially extended scattering media

机译:用于通过空间扩展散射介质进行成像的脉冲全息系统

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Imaging through scattering media is a highly sought capability for military, industrial, and medical applications. Unfortunately, nearly all recent progress was achieved in microscopic light propagation and/or light propagation through thin or weak scatterers which is mostly pertinent to medical research field. Sensing at long ranges through extended scattering media, for example turbid water or dense fog, still represents significant challenge and the best results are demonstrated using conventional approaches of time- or range-gating. The imaging range of such systems is constrained by their ability to distinguish a few ballistic photons that reach the detector from the background, scattered, and ambient photons, as well as from detector noise. Holography can potentially enhance time-gating by taking advantage of extra signal filtering based on coherence properties of the ballistic photons as well as by employing coherent addition of multiple frames. In a holographic imaging scheme ballistic photons of the imaging pulse are reflected from a target and interfered with the reference pulse at the detector creating a hologram. Related approaches were demonstrated previously in one-way imaging through thin biological samples and other microscopic scale scatterers. In this work, we investigate performance of holographic imaging systems under conditions of extreme scattering (less than one signal photon per pixel signal), demonstrate advantages of coherent addition of images recovered from holograms, and discuss image quality dependence on the ratio of the signal and reference beam power
机译:通过散射介质成像是军事,工业和医疗应用的备受追捧的能力。不幸的是,几乎所有最近的进展都是通过薄或弱散射体的微观光传播和/或光传播来实现,这主要与医学研究领域相关。通过扩展散射介质(例如浊水或致密雾)以长范围感测,仍然代表着重大挑战,并且使用常规时间或范围门控方法证明了最佳结果。这种系统的成像范围受其能力区分从背景,散射和环境光子以及探测器噪声到达探测器的一些弹道光子的能力。通过利用基于弹性光子的相干性能以及采用多帧的相干添加来利用额外的信号滤波,全息术可以通过额外的信号滤波来增强时光。在全息成像方案中,成像脉冲的弹性光子从目标反射并干扰检测器处的​​参考脉冲,从而创建全息图。先前通过薄的生物样品和其他显微镜级散射体以单向成像证明相关方法。在这项工作中,我们在极端散射的条件下调查全息成像系统的性能(小于每个像素信号的信号光子),证明了从全息图恢复的图像的相干的优点,并讨论了信号质量依赖性对信号的比率和依赖于信号的比率参考光束功率

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