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Determination of the Optimum Sampling Frequency of Noisy Images by Spatial Statistics

机译:空间统计法确定噪声图像的最佳采样频率

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In optical metrology the final experimental result is normally an image acquired with a CCD camera. Owing to the sampling at the image, an interpolation is usually required. For determining the error in the measured parameters with that image, knowledge of the uncertainty at the interpolation is essential. We analyze how briging, an estimator used in spatial statistics, can generate convolution kernels for filtering noise in regUlarly sampled images. The convolution kernel obtained with briging explicitly depends on the spatial correlation and also on metrological conditions, such as the random fluctuations of the measured quantity, and the resolution of the measuring devices. Kriging, in addition, allows us to determine the uncertainty of the interpolation, and we have analyzed it in terms of the sampling frequency and the random fluctuations of the image, comparing it with Nyquist criterion. By use ofbriging, it is possible to determine the optimum-required sampling frequency for a noisy image so that the uncertainty at interpolation is below a threshold value.
机译:在光学计量学中,最终的实验结果通常是使用CCD摄像机获取的图像。由于在图像上采样,通常需要插值。为了确定带有该图像的测量参数中的误差,必须了解插值时的不确定性。我们分析了桥接(空间统计中使用的估计器)如何生成卷积核以过滤规则采样图像中的噪声。通过桥接获得的卷积核明确取决于空间相关性,还取决于计量条件,例如被测量的随机波动以及测量设备的分辨率。此外,克里格法使我们能够确定插值的不确定性,并根据采样频率和图像的随机波动对其进行了分析,并与奈奎斯特准则进行了比较。通过桥接,可以确定噪点图像的最佳采样频率,以使插值时的不确定度低于阈值。

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