应用样条插值提高相关应急导航系统的精度

V. Bykov, N. Kolchigin, G. Y. Miroshnik, T. V. Miroshnik, О. M. Sotnikov
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These parameters are used to determine the optimal value of the parameter of the cubic spline interpolator used in the second stage in order to refine the rough estimate of the coordinates and improve the positioning accuracy of the navigation system.\n\nPurpose of the work: The purpose of the work is to develop an algorithm for aligning images in correlation-extreme navigation systems, which makes it possible to realize a cubic spline parameter close to the optimal value for each of the possible shifts of the current image relative to the reference image and, as a result, to increase the accuracy of determining the coordinates.\n\nMaterials and methods. In correlation-extreme navigation systems, the coordinates of the aircraft are determined by calculating the mutual shift of the current image obtained using the sensor of the Earth's physical field and the reference image, which is known in advance. At the same time, the alignment accuracy of discrete current and reference images, which are usually used in practice, does not exceed half a pixel. Therefore, the problem of improving the accuracy of navigation systems is of great importance. One of the possible ways to solve this problem is to use methods for approximating the decision function of the image alignment algorithm in the vicinity of its global maximum.Results: To illustrate the gain in the accuracy of the positioning of navigation systems, statistical tests of the algorithm with a 6-point interpolator and the above-described two-stage procedure for minimizing the decision function containing spline interpolation at the second stage were carried out. A typical image was used as a reference image. The coordinates of the center of the current and reference images were played randomly in accordance with the two-dimensional normal distribution law, the average value of which coincided with the center of the reference image; the standard deviation is also found. Then the current image was formed. The constructed current image was noisy with additive white Gaussian noise with zero mean value and the same standard deviation for each element . Image alignment was assumed to be correct if the following conditions were met: , where – is the shift estimate generated by the algorithm. Then, the algorithms were repeatedly run with different realizations of the noise component of the current image, and the dependences of the root-mean-square error in each direction on the mean-square value were plotted . The figures in the article show the dependencies for the algorithm with a 6-point interpolator (upper curve) and for a two-stage algorithm (lower curve). Analysis of the graphs allows us to conclude that the second algorithm wins in the accuracy of determining the coordinates of the shift by about 5 times. The dependencies for both algorithms practically coincide with those shown in the figure. It should be noted the weak dependence of the positioning accuracy on the change in the parameter in the area .\n\nConclusions: It is shown that the optimal value of the parameter of the cubic spline interpolator depends to a lesser extent on the magnitude of the local shift of the images and, to a greater extent, on the correlation interval of the reference image in the vicinity of the image alignment point, which is proposed to be estimated using the Gaussian curvature parameter.","PeriodicalId":91202,"journal":{"name":"Annual book of ASTM standards. Section 11, Water and environmental technology. 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引用次数: 0

摘要

的相关性。利用样条插值提高了相关极值导航系统的精度。提出了一种两阶段的相关极值导航图像组合算法。首先,利用二次插值器在其极值点附近构造算法决策函数的曲面,并估计其高斯曲率和极值点坐标。利用这些参数确定第二阶段所使用的三次样条插补器参数的最优值,以细化坐标的粗略估计,提高导航系统的定位精度。工作目的:本工作的目的是开发一种在相关极值导航系统中对齐图像的算法,该算法可以实现当前图像相对于参考图像的每一次可能移位的最优值的三次样条参数,从而提高确定坐标的精度。材料和方法。在相关极值导航系统中,飞行器的坐标是通过计算地球物理场传感器获得的当前图像与参考图像的互移来确定的,这是事先已知的。同时,实际中常用的离散电流图像和参考图像的对准精度不超过半像素。因此,提高导航系统的精度是一个非常重要的问题。解决这一问题的一种可能方法是在图像对齐算法的全局最大值附近使用逼近决策函数的方法。结果:为了说明导航系统定位精度的提高,对该算法进行了6点插值的统计检验,并在第二阶段进行了上述两阶段的最小化包含样条插值的决策函数的过程。采用典型图像作为参考图像。当前图像和参考图像的中心坐标按照二维正态分布规律随机赋值,其平均值与参考图像的中心重合;标准差也得到了。然后形成当前图像。所构建的当前图像被加性高斯白噪声所噪声,每个元素的平均值为零,标准差相同。如果满足以下条件,则假定图像对齐是正确的:,其中-为算法产生的移位估计。然后,在当前图像噪声分量的不同实现下重复运行算法,绘制各方向均方根误差与均方值的依赖关系。本文中的图显示了带有6点插值器的算法(上曲线)和两阶段算法(下曲线)的依赖关系。通过对图的分析,我们可以得出结论,第二种算法在确定位移坐标的精度上比第二种算法高出约5倍。这两种算法的依赖关系实际上与图中所示的一致。应该注意弱依赖定位精度的参数的变化在该地区.Conclusions:结果表明,最优值的参数三次样条内插程序在较小程度上取决于当地改变图像的大小,在更大程度上,相关间隔的参考图像附近的图像对齐,使用高斯曲率,提出了估计参数。
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Applying spline interpolation to increase accuracy of correlation-emergency navigation systems
Relevance. Spline interpolation is used to improve the accuracy of correlation-extreme navigation systems. A two-stage algorithm for combining images in correlation-extreme navigation systems is proposed. At the first stage, the surface of the decision function of the algorithm is constructed in the vicinity of its extremum using a quadratic interpolator by six points and its Gaussian curvature and extremum coordinates are estimated. These parameters are used to determine the optimal value of the parameter of the cubic spline interpolator used in the second stage in order to refine the rough estimate of the coordinates and improve the positioning accuracy of the navigation system. Purpose of the work: The purpose of the work is to develop an algorithm for aligning images in correlation-extreme navigation systems, which makes it possible to realize a cubic spline parameter close to the optimal value for each of the possible shifts of the current image relative to the reference image and, as a result, to increase the accuracy of determining the coordinates. Materials and methods. In correlation-extreme navigation systems, the coordinates of the aircraft are determined by calculating the mutual shift of the current image obtained using the sensor of the Earth's physical field and the reference image, which is known in advance. At the same time, the alignment accuracy of discrete current and reference images, which are usually used in practice, does not exceed half a pixel. Therefore, the problem of improving the accuracy of navigation systems is of great importance. One of the possible ways to solve this problem is to use methods for approximating the decision function of the image alignment algorithm in the vicinity of its global maximum.Results: To illustrate the gain in the accuracy of the positioning of navigation systems, statistical tests of the algorithm with a 6-point interpolator and the above-described two-stage procedure for minimizing the decision function containing spline interpolation at the second stage were carried out. A typical image was used as a reference image. The coordinates of the center of the current and reference images were played randomly in accordance with the two-dimensional normal distribution law, the average value of which coincided with the center of the reference image; the standard deviation is also found. Then the current image was formed. The constructed current image was noisy with additive white Gaussian noise with zero mean value and the same standard deviation for each element . Image alignment was assumed to be correct if the following conditions were met: , where – is the shift estimate generated by the algorithm. Then, the algorithms were repeatedly run with different realizations of the noise component of the current image, and the dependences of the root-mean-square error in each direction on the mean-square value were plotted . The figures in the article show the dependencies for the algorithm with a 6-point interpolator (upper curve) and for a two-stage algorithm (lower curve). Analysis of the graphs allows us to conclude that the second algorithm wins in the accuracy of determining the coordinates of the shift by about 5 times. The dependencies for both algorithms practically coincide with those shown in the figure. It should be noted the weak dependence of the positioning accuracy on the change in the parameter in the area . Conclusions: It is shown that the optimal value of the parameter of the cubic spline interpolator depends to a lesser extent on the magnitude of the local shift of the images and, to a greater extent, on the correlation interval of the reference image in the vicinity of the image alignment point, which is proposed to be estimated using the Gaussian curvature parameter.
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