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Efficient scene-based method for real-time non-uniformity correction of infrared video sequences

机译:高效的基于场景的红外视频序列实时非均匀校正方法

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摘要

A method combing simple linear and nonlinear filters is proposed for real-time 'non-uniformity correction' of infrared video sequences, which suppresses 'ghosting' artefacts due to both lack of motion and strong edges. In this 'least mean square' (LMS)-based method, a mean filter is used first, when the 'fixed pattern noise' (FPN) level is high, taking advantage of its noise smoothing capability. When the FPN level drops to a low level, a sigma filter is used instead to reduce edge smearing. The sigma filter is also used to detect abnormal pixels like dead pixels and pixels contaminated by impulse noise, in addition to adaptive adjustment of the learning rate, with no extra cost. Experiments with simulated data and real infrared sequences show that the proposed method outperforms several other LMS methods. It is of the same computational complexity as Scribner's method, which makes it a good candidate for real-time hardware implementation.
机译:针对红外视频序列的实时“非均匀性校正”,提出了一种将简单的线性和非线性滤波器组合在一起的方法,该方法可以抑制由于缺少运动和边缘强而造成的“重影”伪影。在这种基于“最小均方”(LMS)的方法中,当“固定模式噪声”(FPN)级别较高时,将首先使用均值滤波器,以利用其噪声平滑功能。当FPN电平下降到低电平时,可以使用sigma滤波器来减少边缘拖尾。除了对学习速率进行自适应调整外,西格玛滤波器还用于检测异常像素(例如,死像素和被脉冲噪声污染的像素),而无需花费额外费用。模拟数据和真实红外序列的实验表明,该方法优于其他几种LMS方法。它的计算复杂度与Scribner的方法相同,这使其成为实时硬件实现的理想选择。

著录项

  • 来源
    《Electronics Letters》 |2014年第12期|868-870|共3页
  • 作者

    Liang C.; Sang H.; Shen X.;

  • 作者单位

    National Key Laboratory of Science and Technology on Multi-spectral Information Processing, Huazhong University of Science and Technology, Wuhan, People's Republic of China|c|;

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  • 正文语种 eng
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