How to find the indices of a point on a curve

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yousef Yousef
yousef Yousef 2015 年 10 月 28 日
コメント済み: dpb 2015 年 11 月 5 日
Hi I have a curve with one maximum,I need to find the indices of the the two 0.707 points. Thanks

回答 (3 件)

dpb
dpb 2015 年 10 月 28 日
If you have the curve as computed points, see
doc interp1
Switch the normal X,Y meanings to interpolate with Y as the independent variable instead of X in this case. Also, NB: You'll need to do this in two separate calls, one with the values to the left and another with those to the right of the maximum as interp1 must have unique values for the interpolating function.
This will solve for the precise location; not necessarily integer. If you want the nearest index, then either a) round the above results or b) use
[~,ix]=min(abs(y-sqrt(2)/2*ymax));
Again you'll have to do the above piecewise accounting for the length of the subvectors in the returned indices as there's no guarantee the locations will be symmetric or the same on both sides except under very particular circumstances.
  3 件のコメント
dpb
dpb 2015 年 10 月 28 日
Well, I don't know what form your data are in...
yousef Yousef
yousef Yousef 2015 年 10 月 29 日
Hi My data is in the form of vector

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Thorsten
Thorsten 2015 年 10 月 29 日
編集済み: Thorsten 2015 年 10 月 29 日
If y is your curve, in general you will not have values that are exactly 0.707 of your maximum. So the idea is to use the 2 values that differ the least from the desired value 0.707*max(y):
[~, idx] = sort(abs(y-0.707*max(y)));
idx = idx(1:2);
  4 件のコメント
yousef Yousef
yousef Yousef 2015 年 10 月 29 日
I have got 64 and 96
Thorsten
Thorsten 2015 年 10 月 29 日
編集済み: Thorsten 2015 年 10 月 29 日
I see. These are the index values into your x. So if you have
x = -90:0.5:90;
x707 = x(idx)
x([64 96])
ans =
-58.50 -42.50
Note that I figured out x=-90:0.5:90 by eye and trial and error from your plot. You have to use the actual values of x of course.

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yousef Yousef
yousef Yousef 2015 年 11 月 5 日
clear all clc Angle=[5 10 20 60 180 190 195 300 305]; collision=[]; for i=1:length(Angle)-1 d=[]; targetValue = Angle(i); tolerance = 5; diff = abs(Angle-targetValue); tt=find(diff>0 & diff <= tolerance);
if ( tt>0) d=[d 2]; else d=[d 1]; end collision=[collision;d]; end
  1 件のコメント
dpb
dpb 2015 年 11 月 5 日
Use the {} Code button to format your code.

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