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A new method of CCD dark current correction via extracting the dark information from scientific images

机译:通过从科学图像中提取暗信息来校正CCD暗电流的新方法

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We have developed a new method to correct dark current at relatively high temperatures for Charge-Coupled Device (CCD) images when dark frames cannot be obtained on the telescope. For images taken with the Antarctic Survey Telescopes (AST3) in 2012, due to the low cooling efficiency, the median CCD temperature was -46°C, resulting in a high dark current level of about 3e~-/pix/sec, even comparable to the sky brightness (10e~-/pix/sec). If not corrected, the nonuniformity of the dark current could even overweight the photon noise of the sky background. However, dark frames could not be obtained during the observing season because the camera was operated in frame-transfer mode without a shutter, and the telescope was unattended in winter. Here we present an alternative, but simple and effective method to derive the dark current frame from the scientific images. Then we can scale this dark frame to the temperature at which the scientific images were taken, and apply the dark frame corrections to the scientific images. We have applied this method to the AST3 data, and demonstrated that it can reduce the noise to a level roughly as low as the photon noise of the sky brightness, solving the high noise problem and improving the photometric precision. This method will also be helpful for other projects that suffer from similar issues.
机译:当无法在望远镜上获得暗框时,我们已经开发出一种新方法来校正电荷耦合器件(CCD)图像在较高温度下的暗电流。对于2012年使用南极测量望远镜(AST3)拍摄的图像,由于冷却效率低,CCD的中值温度为-46°C,导致约3e〜-/ pix / sec的高暗电流水平,甚至可比到天空亮度(10e〜-/ pix / sec)。如果不加以纠正,暗电流的不均匀甚至可能会使天空背景的光子噪声超重。但是,在观测季节无法获得暗框,这是因为相机是在没有快门的情况下以帧传输模式操作的,而望远镜在冬天是无人值守的。在这里,我们提出了一种替代方法,但简单有效的方法是从科学图像中得出暗电流帧。然后,我们可以将此暗框缩放到拍摄科学图像的温度,然后将暗框校正应用于科学图像。我们已经将该方法应用于AST3数据,并证明它可以将噪声降低到与天空亮度的光子噪声大致一样低的水平,解决了高噪声问题并提高了光度测量精度。这种方法对于遭受类似问题的其他项目也将有所帮助。

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