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On-line nonuniformity and temperature compensation of uncooled IRFPAs using embedded digital hardware

机译:基于嵌入式数字硬件的非致冷红外焦平面阵列的在线非均匀性和温度补偿

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We present a model and a signal-processing algorithm for compensating the nonuniformity (NU) noise and surrounding temperature self-heating e ects on the response of uncooled microbolometer-based infrared cameras. The model for the NU noise considers pixelwise gain and o set parameters. The representation for the self-heating dynamics of the camera is an autoregressive moving average (ARMA) model for camera's internal temperature. The algorithm performs initially a two-point calibration at a known surrounding temperature. Next, without modifying the NU parameters, we dynamically compensate variations in the camera readout using both estimates of the ARMA model and measurements of the surrounding temperature taken by a simple sensor embedded in the camera. Tested on a CEDIP Jade UC33 camera, our system compensates reference black-body images at 30 degrees Celsius, with a peak error below 1.3 and a mean error below 0.3 degrees Celsius, in scenarios where the room temperature varied up to 14 degrees Celsius. Moreover, the regularity and simplicity of the algorithm enables us to implement it on embedded digital hardware, thereby reducing its cost, size, and power consumption. We implemented the algorithm on a Xilinx XC6SLX45 FPGA using fixed-point arithmetic. The circuit exhibits an arithmetic error of 0.06 degrees compared to a software double-precision implementation. It compensates 320×240-pixel video at up to 1,437 fps and 640×480-pixel video at up to 360 fps, using 1% of the logic resources of the FPGA, and less than 1 mW of dynamic power at 110 MHz. Adding Gigabit Ethernet communication, HDMI display, and a pseudocolor map on the chip uses 10% of the resources and consumes 915 mW.
机译:我们提出了一种模型和信号处理算法,用于补偿非致冷微测辐射热计红外相机响应的非均匀性(NU)噪声和环境温度自加热效应。NU噪声模型考虑了像素级增益和o设置参数。摄像机的自加热动力学表示为摄像机内部温度的自回归滑动平均(ARMA)模型。该算法最初在已知环境温度下执行两点校准。接下来,在不修改NU参数的情况下,我们使用ARMA模型的估计值和嵌入相机中的简单传感器采集的环境温度测量值,动态补偿相机读数的变化。在CEDIP Jade UC33相机上测试,我们的系统在30摄氏度时补偿参考黑体图像,在室温变化高达14摄氏度的情况下,峰值误差低于1.3,平均误差低于0.3摄氏度。此外,算法的规则性和简单性使我们能够在嵌入式数字硬件上实现它,从而降低其成本、大小和功耗。我们使用定点算法在Xilinx XC6SLX45 FPGA上实现了该算法。与软件双精度实现相比,该电路的算术误差为0.06度。它以高达1437 fps的速度补偿320×240像素的视频,以高达360 fps的速度补偿640×480像素的视频,使用FPGA的1%逻辑资源,在110 MHz时动态功率小于1 mW。在芯片上添加千兆以太网通信、HDMI显示和伪彩色地图将占用10%的资源,并消耗915MW。

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