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An improved model of charge transfer inefficiency and correction algorithm for the Hubble Space Telescope

机译:一种改进的荷载空间望远镜电荷转移效率模型及校正算法

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摘要

Charge-coupled device (CCD) detectors, widely used to obtain digital imaging, can be damaged by high energy radiation. Degraded images appear blurred, because of an effect known as Charge Transfer Inefficiency (CTI), which trails bright objects as the image is read out. It is often possible to correct most of the trailing during post-processing, by moving flux back to where it belongs. We compare several popular algorithms for this: quantifying the effect of their physical assumptions and tradeoffs between speed and accuracy. We combine their best elements to construct a more accurate model of damaged CCDs in the Hubble Space Telescope's Advanced Camera for Surveys/Wide Field Channel, and update it using data up to early 2013. Our algorithm now corrects 98 per cent of CTI trailing in science exposures, a substantial improvement over previous work. Further progress will be fundamentally limited by the presence of read noise. Read noise is added after charge transfer so does not get trailed - but it is incorrectly untrailed during post-processing.
机译:电荷耦合器件(CCD)检测器被广泛用于获取数字成像,可能会被高能辐射损坏。降级的图像显得模糊,这是由于一种称为电荷转移低效率(CTI)的效应,该效应在读取图像时会拖曳明亮的物体。通常可以通过将磁通移回其所属位置来纠正后处理过程中的大部分拖尾。为此,我们比较了几种流行的算法:量化其物理假设的影响以及速度和准确性之间的权衡。我们结合了他们的最佳元素,在哈勃太空望远镜的高级勘测/宽场通道摄像机中构建了更精确的CCD损坏模型,并使用截至2013年初的数据对其进行了更新。我们的算法现在可纠正98%的CTI科学拖尾曝光度,比以前的工作有很大改善。读取噪声的存在将从根本上限制进一步的发展。电荷转移后会增加读取噪声,因此不会被拖尾-但在后处理过程中会错误地使其脱离轨道。

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