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Gaussian-Taylor signal-to-noise ratio estimation for scanning electron microscope images
1Faculty of Engineering and Technology, Multimedia University, Melaka, Malaysia. kssim@mmu.edu.my
Abstract:
A new and robust parameter estimation technique, named Gaussian-Taylor interpolation, is proposed to predict the signal-to-noise ratio (SNR) of scanning electron microscope images. The results of SNR and variance estimation values are tested and compared with piecewise cubic Hermite interpolation, quadratic spline interpolation, autoregressive moving average and moving average. Overall, the proposed estimations for noise-free peak and SNR are most consistent and accurate to within a certain acceptable degree compared with the others.

