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首页> 外文期刊>Journal of Modern Optics >A min-norm approach for estimating phase distribution in an interferogram
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A min-norm approach for estimating phase distribution in an interferogram

机译:用于估计干涉图中相位分布的最小范数方法

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Phase distribution in an interferogram is usually computed from several phase shifted intensity images acquired temporally by means of a CCD camera. These phase shifts are commonly accomplished by translation of a mirror with a piezoelectric transducer (PZT). In reality the PZT motion is not exact. Thus the aim of this paper is to present a novel approach for estimating the phase steps that are imparted to the PZT in the presence of nonsinusoidal waveforms and random noise. The method functions by designing an autocovariance matrix from the intensity registered on the CCD for N data frames. The eigendecomposition of an autocovariance matrix yields the signal and noise subspaces. The phase step values are estimated pixelwise from the noise subspace. This approach provides the flexibility of using arbitrary phase steps, a feature most commonly attributed to generalized phase shifting algorithms. Once the phase steps are estimated the Vandermonde system of equations is applied to estimate the phase distribution.
机译:干涉图中的相位分​​布通常是根据通过CCD摄像机在时间上获取的几个相移强度图像计算得出的。这些相移通常通过镜面与压电换能器(PZT)的平移来实现。实际上,PZT运动并不精确。因此,本文的目的是提出一种新颖的方法,用于估计在存在非正弦波形和随机噪声的情况下赋予PZT的相位步长。该方法通过根据CCD上记录的N个数据帧的强度设计自协方差矩阵来起作用。自协方差矩阵的特征分解产生信号和噪声子空间。从噪声子空间中逐像素估计相位步长值。这种方法提供了使用任意相位步骤的灵活性,这是归因于广义相移算法的最常见特征。一旦估计了相位步长,便将Vandermonde方程组应用于估计相位分布。

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