How to flip or mirror some vector parts

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Lizan
Lizan on 12 Apr 2015
Commented: pfb on 12 Apr 2015
Hi,
I have a data that has flipped on me. I need to correct for this but I am not sure how to do this. The data is in vector form.
I need to somehow invert the data to become a rectangle form, see red line in photo above. I looked at flipud, and other functions like that but I can't get the it turned correctly.
How can I do this? Attaching the vector.
Many thanks!
  4 Comments
pfb
pfb on 12 Apr 2015
Edited: pfb on 12 Apr 2015
But what exactly is what you want to "flip"?
In flipud (or fliplr), up and down (or left and right) refer to the vector, irrespective of the data it contains. That is, if v = [1 2 3 4] then fliplr(v)=[4 3 2 1]. Also flipud(v) would produce v itself, because v is a row, and flipud works along columns.
I do not think that flipping alone would do the trick.
Lizan
Lizan on 12 Apr 2015
Edited: Lizan on 12 Apr 2015
Well I guess I am not looking for flipping. Somehow I want the line to continue up rather than turning down. Not sure what word I am looking for or what is called...
I just want to have that part that is going down to continue up.

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Accepted Answer

pfb
pfb on 12 Apr 2015
Edited: pfb on 12 Apr 2015
From the shape of your curve, I guess that you might get roughly the shape you need by setting
yd = (y+fliplr(y))/2
where I'm assuming that your "raw" vector y is a row. Change fliplr into flipud if it is a column (or transpose y).
But then I'm not sure that the data you're getting would have any meaning.
Update: Actually I think that my solution gives something similar to the red curve, but the plateau would be below the baseline.
I took a look at the data you attach, which covers the part from the second to the third curve in your plot. Your vector is a column, so flipud should apply.
Perhaps what you are looking for is
yd = (y+flipud(y))/2;
b = yd(1); % this should roughly be the baseline value
yd = -(yd-b)+b;
In the last line I change the sign of yd after subtracting the baseline, so that the plateau is on top of the baseline (which now is 0) and add the baseline again.
This should give roughly the shape you're looking for, if y is the whole data you used in the plot (not only what you attach).
I have strong doubts about any data analysis based on yd, though.
  2 Comments
Lizan
Lizan on 12 Apr 2015
Edited: Lizan on 12 Apr 2015
Yes, thank you! That is what I was looking for.
I only need the total amplitude of the curve. This is the result from an interferometer.. So I am looking for the phase shift. I am going to transform this curve to the phase change.
pfb
pfb on 12 Apr 2015
You're welcome. Can you accept the answer, if it works for you?

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