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A fast method for detecting and estimating motion in radar images using normalized cross-correlation

机译:一种快速方法,用于使用归一化交叉相关检测和估算雷达图像运动的方法

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Motion detection and estimation is an important task in several applications of image analysis, including scenarios such as satellite cross-cueing or detecting small shifts in terrain. One widely employed technique for estimating the amount of motion between two images is Normalized Cross-Correlation (XCC), although its computational cost is often prohibitively high for time-sensitive applications. In this work, a previously developed algorithm that uses sum tables to calculate the NCC efficiently for 1-D ultrasound traces is adapted to work for 2-D radar images. The performance of the sum tables algorithm is quantified both theoretically as well as with Synthetic Aperture Radar (SAR) data from the RADARSAT-2 satellite, and is shown to provide time savings of 97% or more compared to the direct method. The algorithm described herein could be used to provide more timely intelligence in situations where it is desirable to detect and estimate the motion of targets using remote sensing.
机译:运动检测和估计是图像分析的若干应用中的重要任务,包括诸如卫星交叉管道或检测地形中的小班次的场景。用于估计两个图像之间的运动量的一种广泛采用的技术是归一化的互相关(XCC),尽管其计算成本通常对时间敏感的应用常见高。在这项工作中,先前开发的算法使用总和表以有效地计算1-D超声迹线的NCC,适于为2-D雷达图像工作。总和表算法的性能理论上以及来自雷达拉特-2卫星的合成孔径雷达(SAR)数据,并显示与直接方法相比提供97%或更高的时间节省。这里描述的算法可用于在期望使用遥感的情况下期望和估计目标的运动的情况下提供更及时的智能。

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