论文标题
超光运动辅助4维灯光成像
Superluminal Motion-Assisted 4-Dimensional Light-in-Flight Imaging
论文作者
论文摘要
高速成像技术的进步为捕获超快现象(例如空气中的光传播或通过媒体)开辟了新的可能性。基于各种类型的成像系统,已经报告了在3维XYT空间中捕获光线的光线,而第四维Z中光线照明信息的重建是一个挑战。我们基于观察到新的时门控兆像素单光雪崩二极管摄像机捕获的静光运动的观察到了第一个4维光线像成像。没有激光扫描,摄像头翻译,插值和黑暗噪声减法,生成高分辨率的飞行视频。使用机器学习技术来分析测得的时空数据集。引入理论公式以执行最小二乘回归,并在没有事先知识的情况下恢复了额外的信息。该算法依赖于与天体物理学中悬臂运动等效的数学配方,该公式的比例为四十四。重建的飞行轨迹与光路的实际几何形状非常一致。我们的方法可能会为高速成像应用提供新的功能,例如非视线成像和时间分辨的光学断层扫描。
Advances in high speed imaging techniques have opened new possibilities for capturing ultrafast phenomena such as light propagation in air or through media. Capturing light-in-flight in 3-dimensional xyt-space has been reported based on various types of imaging systems, whereas reconstruction of light-in-flight information in the fourth dimension z has been a challenge. We demonstrate the first 4-dimensional light-in-flight imaging based on the observation of a superluminal motion captured by a new time-gated megapixel single-photon avalanche diode camera. A high resolution light-in-flight video is generated with no laser scanning, camera translation, interpolation, nor dark noise subtraction. A machine learning technique is applied to analyze the measured spatio-temporal data set. A theoretical formula is introduced to perform least-square regression, and extra-dimensional information is recovered without prior knowledge. The algorithm relies on the mathematical formulation equivalent to the superluminal motion in astrophysics, which is scaled by a factor of a quadrillionth. The reconstructed light-in-flight trajectory shows a good agreement with the actual geometry of the light path. Our approach could potentially provide novel functionalities to high speed imaging applications such as non-line-of-sight imaging and time-resolved optical tomography.