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Illumination Flicker Correction and Frequency Classification Methods

机译:照明闪烁校正和频率分类方法

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摘要

In many modern CMOS imagers employing pixel arrays the optical integration time is controlled by the method known as rolling shutter. This integration technique, combined with fluorescent illuminators exhibiting an alternating light intensity, causes spatial flicker in images varying through the sequence. This flicker can be avoided when the integration time of the imager is adjusted to a multiple of the flicker period. Since the flicker frequency can vary upon the local AC power frequency, a classification must be performed beforehand. This is either performed utilizing an additional illumination intensity detector or, in the case we focus on, restricting to image information only. In this paper we review the state of the art techniques of flicker detection and frequency classification, and propose two robust classification methods based on a clear mathematical model of the illumination flicker problem. Finally we present another approach for compensating for flicker in single images suffering from these artifacts by inversing the flicker model function. Therefore, the flicker phase, amplitude and frequency are to be adjusted adaptively. This however compensates for the fact, that the shutter width is no longer limited to a multiple of the flicker period. We present our simulation results with synthesized image series as well as with real captured sequences under different illumination frequencies, whereas our approaches classify robustly in most imaging situations.
机译:在许多采用像素阵列的现代CMOS成像器中,光学积分时间是通过称为滚动快门的方法控制的。这种集成技术与展现出交替光强的荧光照明器相结合,会导致整个序列中图像变化的空间闪烁。当将成像器的积分时间调整为闪烁周期的倍数时,可以避免这种闪烁。由于闪烁频率会随本地交流电源频率而变化,因此必须事先执行分类。这可以通过使用额外的照明强度检测器执行,或者在我们关注的情况下,仅限于图像信息。在本文中,我们回顾了闪烁检测和频率分类的最新技术,并提出了两种基于清晰的照明闪烁问题数学模型的鲁棒分类方法。最后,我们提出了另一种方法,通过反转闪烁模型函数来补偿遭受这些伪影的单个图像的闪烁。因此,闪烁相位,幅度和频率应进行自适应调整。然而,这补偿了以下事实:快门宽度不再限于闪烁周期的倍数。我们用合成的图像系列以及在不同照明频率下的实际捕获序列展示了仿真结果,而我们的方法在大多数成像情况下均能进行可靠分类。

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