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Astronomical Image Co-adding Method based on Wide-field Image Deconvolution

机译:基于宽场图像去卷积的天文图像共加法方法

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Due to the atmospheric turbulence, the static aberration, tracking and pointing errors of telescopes, the point spread functions (PSFs) in different fields of view are different. Meanwhile, there are different PSFs in the images obtained by different telescopes. The quality of co-adding image is limited by the image with the poorest quality, and finally the resolution and sensitivity of the quad-channel telescope will also be affected. Dividing the image into some regions with the same type of PSF, and deconvolving these regions can improve the quality of the co-adding image. According to this theory, an image restoration algorithm based on the PSF clustering is proposed. Firstly, this paper makes the PSF clustering analysis by using Self-Organizing Maps, and makes the image segmentation based on the result of the PSF clustering analysis, then using the clustered PSFs to make deconvolutions on the sub-images. Then, the restored sub-images after deconvolution are joined together. Finally, by through the image registration and co-adding, the image with a high signal to noise ratio can be obtained. The result shows that the signal to noise ratio of the astronomical images are improved with our method, and the detection capability on faint stars is also improved.
机译:由于大气湍流,望远镜的静态像差,跟踪和指向误差,不同视野中的点传播功能(PSF)是不同的。同时,通过不同望远镜获得的图像中存在不同的PSF。共同添加图像的质量受到质量最贫困的图像的限制,最后,四通道望远镜的分辨率和灵敏度也将受到影响。将图像划分为具有相同类型的PSF的一些区域,并且解构这些区域可以提高共加作图像的质量。根据该理论,提出了一种基于PSF聚类的图像恢复算法。首先,本文通过使用自组织地图进行PSF聚类分析,并根据PSF群集分析的结果进行图像分割,然后使用群集PSF在子图像上进行解码器。然后,在去卷积之后恢复的子图像连接在一起。最后,通过通过图像配准和共加入,可以获得具有高信噪比的图像。结果表明,通过我们的方法改善了天文图像的信噪比,并且还提高了微弱恒星的检测能力。

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