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AUTOMATED REGISTRATION OF IMAGES FROM MULTIPLE BANDS OF RESOURCESAT-2 LISS-4 CAMERA

机译:自动注册来自ResourcesAt-2 Liss-4相机的多个频段的图像

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Continuous and automated co-registration and geo-tagging of images from multiple bands of Liss-4 camera is one of the interesting challenges of Resourcesat-2 data processing. Three arrays of the Liss-4 camera are physically separated in the focal plane in alongtrack direction. Thus, same line on the ground will be imaged by extreme bands with a time interval of as much as 2.1 seconds. During this time, the satellite would have covered a distance of about 14 km on the ground and the earth would have rotated through an angle of 30". A yaw steering is done to compensate the earth rotation effects, thus ensuring a first level registration between the bands. But this will not do a perfect co-registration because of the attitude fluctuations, satellite movement, terrain topography, PSM steering and small variations in the angular placement of the CCD lines (from the pre-launch values) in the focal plane. This paper describes an algorithm based on the viewing geometry of the satellite to do an automatic band to band registration of Liss-4 MX image of Resourcesat-2 in Level 1A. The algorithm is using the principles of photogrammetric collinearity equations. The model employs an orbit trajectory and attitude fitting with polynomials. Then, a direct geo-referencing with a global DEM with which every pixel in the middle band is mapped to a particular position on the surface of the earth with the given attitude. Attitude is estimated by interpolating measurement data obtained from star sensors and gyros, which are sampled at low frequency. When the sampling rate of attitude information is low compared to the frequency of jitter or micro-vibration, images processed by geometric correction suffer from distortion. Therefore, a set of conjugate points are identified between the bands to perform a relative attitude error estimation and correction which will ensure the internal accuracy and co-registration of bands. Accurate calculation of the exterior orientation parameters with GCPs is not required. Instead, the relative line of sight vector of each detector in different bands in relation to the payload is addressed. With this method a band to band registration accuracy of better than 0.3 pixels could be achieved even in high hill areas.
机译:连续和自动配准和地理标记从利斯-4相机的多个频带的图像是在Resourcesat-2的数据处理的有趣挑战之一。的利斯-4相机的三个阵列中的聚焦平面在物理上分离在alongtrack方向。因此,在地面上同一行将由极端条带的尽可能多的2.1秒的时间间隔成像。在此期间,该卫星将已覆盖的地面上约14公里距离和地球将通过的30" 的角度已经旋转。偏航转向做是为了补偿地球自转的影响,从而保证之间的第一级注册的频带。但是,这将不这样做,因为姿态波动,卫星运动,地形地貌,PSM转向和在CCD线的角度放置小的变化(从发射前的值)在焦平面的完美共配准该文描述了一种基于卫星的观看几何算法来执行的自动频带资源卫星2的在水平1A利斯-4 MX图像的频带登记。该算法是使用摄影测量共线方程的原理。该模型采用的轨道轨迹和态度与多项式拟合,然后,直接地理参照与它在中间频带的每个像素被映射到特定位置的表面上的全球DEM地球与给定的态度。姿态是通过内插从星传感器和陀螺仪,其在低的频率取样获得的测量数据来估计。当的姿势信息的采样速率相比低抖动或微振动的频率,通过几何校正处理的图像从失真受到影响。因此,一组共轭点均带之间确定进行相对姿态误差估计和校正,这将确保频带的内部精度和配准。不需要与地面控制点的外方位元素的精确计算。取而代之的是,在相对于所述有效载荷不同频带每个检测器的视线矢量的相对线被寻址。使用这种方法优于0.3像素的带带配准精度甚至可以在高山地区来实现。

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