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Statistical detection of resolved targets in background clutter using optical/infrared imagery

机译:使用光学/红外图像对背景杂波中的分辨目标进行统计检测

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摘要

The use of optics to detect targets has been around for a long time. Early attempts at automatic target detection assumed target plus noise, which means that the targets were small compared to the pixel field of view and therefore unresolved. However, the advent of advanced focal plane technology has resulted in optical systems that can provide highly resolved target images. The intent of this paper is to develop a general solution for the detection of resolved targets in background clutter. We recognize that resolved targets obscure any background clutter that would have been visible if the targets were absent. An optimum detection algorithm is derived that compares a test statistic to a threshold and decides a target is present if the statistic is less than the threshold. We find that the detection performance depends upon (1) the apparent contrast rather than the signal to noise ratio and (2) is highly dependent on the background clutter to common system noise ratio. In fact, the target can still be detected even when the target contrast goes to zero provided the background clutter is greater than the common system noise. Computer simulations are shown to validate the theoretical detection and false alarm probabilities. The findings in this paper should be useful to engineers and scientists designing electro-optical and infrared sensors for finding resolved targets immersed in background-cluttered images.
机译:光学检测目标的使用已经存在很长时间了。早期的自动目标检测尝试假定目标加上噪声,这意味着与像素视场相比目标很小,因此无法解决。但是,先进的焦平面技术的出现导致光学系统可以提供高度分辨的目标图像。本文的目的是开发一种用于检测背景杂波中已分辨目标的通用解决方案。我们认识到,如果目标不存在,则已解决的目标会遮盖任何本应可见的背景杂波。得出最佳检测算法,该算法将测试统计量与阈值进行比较,如果统计量小于阈值,则确定存在目标。我们发现检测性能取决于(1)视在对比度而不是信噪比;(2)高度依赖于背景杂波与常见系统的噪声比。实际上,只要背景杂波大于常见系统噪声,即使目标对比度变为零,仍可以检测到目标。显示了计算机仿真,可以验证理论上的检测和错误警报的可能性。本文中的发现对于设计光电和红外传感器的工程师和科学家,以发现浸入背景杂乱图像中的已分辨目标应该是有用的。

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