Parameter estimation of the structured illumination pattern based on principal component analysis (PCA): PCA-SIM

基于主成分分析(PCA)的结构化照明模式参数估计:PCA-SIM

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Abstract

Principal component analysis (PCA), a common dimensionality reduction method, is introduced into SIM to identify the frequency vectors and pattern phases of the illumination pattern with precise subpixel accuracy, fast speed, and noise-robustness, which is promising for real-time and long-term live-cell imaging.

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