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Sub-picosecond photon-efficient 3D imaging using single-photon sensors

机译:使用单光子传感器的次皮秒光子有效的3D成像

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Active 3D imaging systems have broad applications across disciplines, including biological imaging, remote sensing and robotics. Applications in these domains require fast acquisition times, high timing accuracy, and high detection sensitivity. Single-photon avalanche diodes (SPADs) have emerged as one of the most promising detector technologies to achieve all of these requirements. However, these detectors are plagued by measurement distortions known as pileup, which fundamentally limit their precision. In this work, we develop a probabilistic image formation model that accurately models pileup. We devise inverse methods to efficiently and robustly estimate scene depth and reflectance from recorded photon counts using the proposed model along with statistical priors. With this algorithm, we not only demonstrate improvements to timing accuracy by more than an order of magnitude compared to the state-of-the-art, but our approach is also the first to facilitate sub-picosecond-accurate, photon-efficient 3D imaging in practical scenarios where widely-varying photon counts are observed.
机译:有效的3D成像系统在跨学科具有广泛的应用,包括生物成像,遥感和机器人。这些域中的应用需要快速采集时间,高时序精度和高检测灵敏度。单光子雪崩二极管(SPAD)被出现为实现所有这些要求的最有前途的探测器技术之一。然而,这些探测器被称为堆积的测量失真困扰,从而极大地限制了它们的精确度。在这项工作中,我们开发了一种准确模型堆积的概率图像形成模型。我们使用所提出的模型以及统计前沿,设计了从记录的光子计数有效和鲁棒地估计场景深度和反射率。通过这种算法,我们不仅通过最先进的数量级来证明对时刻精度的提高,但我们的方法也是第一个方便亚微微秒准确,光子有效的3D成像的方法在观察到广泛变化的光子计数的实际情况下。

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