Smoothing noisy increasing measurement/calculation
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I have a set of calculated values based on measured data (erosion through a pipe) where decreasing values are physically impossible. I want to smooth out the data and account for the fact that it is impossible to decrease, but don't want my new data to take giant jumps when the noise is significant. Any suggestions would me much appreciated.
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Más respuestas (2)
John D'Errico
el 18 de Feb. de 2014
2 votos
So use a tool like SLM (download from the file exchange) to fit a monotone increasing spline to the data, smoothing through the noise.
Image Analyst
el 18 de Feb. de 2014
How about just scan the array and compare to the prior value?
for k = 2 : length(erosion)
if erosion(k) < erosion(k-1)
erosion(k) = erosion(k-1);
end
end
Simple, fast, intuitive.
2 comentarios
Image Analyst
el 18 de Feb. de 2014
Even if you do a sliding mean like Chad suggested, you'll still have to do my method (or equivalent) because you said that decreasing values are physically impossible. A sliding mean filter can have values that decrease so you'll have to scan for that and fix it when it occurs.
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