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Astronomical Image Subtraction by Cross-Convolution

机译:交叉卷积的天文图像减法

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In recent years, there has been a proliferation of wide-field sky surveys to search for a variety of transient objects. Using relatively short focal lengths, the optics of these systems produce undersampled stellar images often marred by a variety of aberrations. As participants in such activities, we have developed a new algorithm for image subtraction that no longer requires high-quality reference images for comparison. The computational efficiency is comparable with similar procedures currently in use. The general technique is cross-convolution: two convolution kernels are generated to make a test image and a reference image separately transform to match as closely as possible. In analogy to the optimization technique for generating smoothing splines, the inclusion of an rms width penalty term constrains the diffusion of stellar images. In addition, by evaluating the convolution kernels on uniformly spaced subimages across the total area, these routines can accommodate point-spread functions that vary considerably across the focal plane.
机译:近年来,为搜寻各种瞬变物体而进行的广域天空勘测工作激增。使用相对较短的焦距,这些系统的光学元件会产生采样不足的恒星图像,这些图像通常会因各种像差而受损。作为此类活动的参与者,我们开发了一种新的图像减法算法,不再需要高质量的参考图像进行比较。计算效率可与当前使用的类似程序相媲美。通用技术是交叉卷积:生成两个卷积内核以使测试图像和参考图像分别转换以尽可能地匹配。与生成平滑样条的优化技术类似,均方根宽度罚分项的加入限制了恒星图像的扩散。另外,通过评估整个区域上均匀间隔的子图像上的卷积核,这些例程可以适应在整个焦平面上变化很大的点扩展函数。

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