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Thermal Drift Compensation in Dark-Frame Non-Uniformity Correction for an InGaAs PIN 3D Flash LiDAR Camera

机译:indaas引脚3D闪光激光雷达相机的深色框架非均匀性校正中的热漂移补偿

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This paper presents the expansion of dark-frame non-uniformity correction (DFNUC) techniques to include compensation for thermal drift in a 128×128 PIN diode 3D flash LiDAR camera. Flash LiDAR cameras are operated in various climates, which makes thermal compensation necessary in the dark NUC algorithm. The thermal excitation of electrons has a significant effect on the dark current in an InGaAs PIN photodetector and on the CMOS readout circuitry, thus impacting the output image. This is a well-known phenomenon in imaging sensors and various algorithms have been established to address thermal drift. This paper adapts a linear model for dark signal calibration used in infrared cameras for the calibration of a PIN diode flash LiDAR camera in both intensity and range return. The experimental process involves collecting dark frames in increments of the internal camera temperature from 22°C to 36°C using thermoelectric (TE) cooling modules. A linear trendline is developed for each individual pixel based on the average frame return, which suppresses the random temporal noise and isolates the dark signal return. The trendline helps form a model for the dark frame offset as a function of temperature, which is used for the dark-frame NUC process. The dark-frame NUC with thermal drift compensation is then evaluated by correcting dark frames at various operating temperatures. Finally, illuminated scenes captured by the camera with a 5.91ns, 842.4μJ pulsed laser at 5Hz are corrected at multiple operation temperatures to show the effectiveness of the dark non-uniformity correction algorithm.
机译:本文介绍了深色框架非均匀性校正(DFNUC)技术的扩展,包括在128×128引脚二极管3D闪光激光器相机中的热漂移补偿。闪光激光雷达相机在各种气候下运行,在暗NUC算法中进行热补偿。电子的热激励对InGaAs销光电探测器中的暗电流和CMOS读出电路的暗电流具有显着影响,从而影响输出图像。这是成像传感器中的众所周知的现象,并且已经建立了各种算法来解决热漂移。本文适用于红外摄像机中使用的暗信号校准的线性模型,用于校准强度和范围返回的引脚二极管闪光激光雷达相机。实验过程涉及使用热电(TE)冷却模块以22°C为22°C至36°C的内部摄像机温度的增量收集暗帧。基于平均帧返回的每个单独像素为每个单独像素开发线性趋势线,这抑制了随机时间噪声并隔离暗信号返回。趋势线有助于为暗框偏移的模型作为温度的函数来形成暗框偏移,这用于暗帧NUC过程。然后通过在各种操作温度下校正暗框架来评估具有热漂移补偿的黑暗帧NUC。最后,在多个操作温度下,使用5Hz的5.91ns,842.4μj脉冲激光器捕获的照相机842.4μj脉冲激光器以显示暗非均匀性校正算法的有效性。

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