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Correlated speckle noise in white-light interferometry: theoretical analysis of measurement uncertainty

机译:白光干涉法中相关的斑点噪声:测量不确定度的理论分析

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摘要

The partial coherent illumination of the specimen, which is required for white-light interferometric measurements of optically rough surfaces, directly leads to speckle. The electric field of such speckle patterns strongly fluctuates in amplitude and phase. This spatially correlated noise influences the accuracy of the measuring device. Although a variety of noise sources in white-light interferometry has been studied in recent years, they do not account for spatial correlation and, hence, they cannot be applied to speckle noise. Thus, we derive a new model enabling quantitative predictions for measurement uncertainty caused by speckle. The model reveals that the accuracy can be attributed mainly to the degree of spatial correlation, i.e., the average size of a speckle, and to the coherence length of the light source. The same parameters define the signal-to-noise ratio in the spectral domain. The model helps to design filter functions that are perfectly adapted to the noise characteristics of the respective device, thus improving the accuracy of postprocessing algorithms for envelope detection. The derived expressions are also compared to numerical simulations and experimental data of two different types of interferometers. These results are a first validation of the theoretical considerations of this article.
机译:标本的部分相干照明是光学粗糙表面的白光干涉测量所需的,直接导致了斑点。这种斑点图案的电场在振幅和相位上剧烈波动。这种与空间相关的噪声会影响测量设备的精度。尽管近年来已经研究了白光干涉术中的多种噪声源,但是它们并未考虑空间相关性,因此无法将其应用于斑点噪声。因此,我们得出了一个新模型,该模型能够对散斑引起的测量不确定度进行定量预测。该模型表明,精度可以主要归因于空间相关程度,即斑点的平均大小,以及光源的相干长度。相同的参数定义了频谱域中的信噪比。该模型有助于设计与各自设备的噪声特性完全匹配的滤波器功能,从而提高用于包络检测的后处理算法的准确性。还将导出的表达式与两种不同类型的干涉仪的数值模拟和实验数据进行比较。这些结果是对本文理论考虑的首次验证。

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