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TOD Performance Model for Staring Thermal Imager with Machine Vision

机译:机器视觉凝视热成像仪的TOD性能模型

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摘要

A triangle orientation discrimination threshold(TOD) performance theoretical model is derived for the staring thermal imager based on machine vision. Specifically, how to obtain the TOD curve based on machine vision is briefly described. The spatial frequency distribution of the triangle test pattern is first determined. The transform and response characteristics of the non-periodic triangle pattern and its background clutter through machine vision-based thermal imager are analyzed. The three-dimensional matched filter is adopted to characterize quantitatively the spatial and temporal integration of image enhancement algorithms to the output triangle pattern signal, various noise components and background clutter, and the signal-to-interference ratio (SIR) of the triangle pattern output image is derived for the staring thermal imager based on machine vision. Then, the TOD performance theoretical model is established by assuming that the output SIR is equal to the threshold SIR75% determined by the discrimination criteria of machine vision. Preliminary simulation and experimental results show that this theoretical model can give reasonable prediction of the TOD performance curve for staring thermal imagers based on machine vision.
机译:基于机器视觉,推导了凝视型热成像仪的三角形取向鉴别阈值(TOD)性能理论模型。具体地,简要描述了如何基于机器视觉获得TOD曲线。首先确定三角形测试图案的空间频率分布。通过基于机器视觉的热成像仪分析了非周期性三角形图案及其背景杂波的变换和响应特性。采用三维匹配滤波器来定量表征图像增强算法对输出三角形图案信号,各种噪声成分和背景杂波以及三角形图案输出的信噪比(SIR)的时空积分基于机器视觉为凝视热成像仪导出图像。然后,通过假设输出SIR等于由机器视觉的判别标准确定的阈值SIR75%,建立TOD性能理论模型。初步的仿真和实验结果表明,该理论模型可以为基于机器视觉的凝视型热像仪的TOD性能曲线提供合理的预测。

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