interpolation vector with a lot of duplicate values
이전 댓글 표시
Hi to all! Maybe my question might seem a little strange.
I have 3 vectors x1, y1, and x2
x1 and x2 have a lot of duplicate values, I would like to get y2 by interpolation with the same lenght of y1
y1 = [350 770 800 920 970 990 1020 1054 1080 1100];
x1=[10 10 11 14 13 12 10 10 10 7];
x2 = [10 10 13 13 15 13 13 10 10 10];
(actually have greater length, but always the same for all)
Is it impossible or a non-sense question? (in any case, my problem would remain unsolved) Thank you in advance
댓글 수: 1
Star Strider
2014년 6월 3일
All your vectors are the same size, and duplicates in x2 and x2 aren’t problems with respect to interpolating them.
What do you want y2 to be? You haven’t told us, other than you want it to be the same length.
채택된 답변
If there are several values for one coordinate, then you could, e.g. take the mean value of the abscissas for that coordinate and then perform a linear interpolation:
y1 = [350 770 800 920 970 990 1020 1054 1080 1100];
x1=[10 10 11 14 13 12 10 10 10 7];
x2 = [10 10 13 13 15 13 13 10 10 10];
[C,ia,idx] = unique(x1,'stable');
val = accumarray(idx,y1,[],@mean); %You could take something other than the mean.
your_vals = interp1(C,val,x2,'linear','extrap'); %see interp1() for other interpolation methods. Extrapolation is dangerous.
plot(x1,y1,'b*',x2,your_vals,'r+');
댓글 수: 15
Stefano
2014년 6월 4일
Well, you could take the minimum @min, the maximum @max, the median @median... whatever tickles your fancy. You should decide based on the type of data you have and what you want to achieve.
I don't know what you mean by it does not match. Maybe you could use something other than a linear interpolation between points. For that, please refer to the documentation.
doc interp1
José-Luis
2014년 6월 4일
No worries. Keep in mind that unique() returns sorted values, provided you don't use the 'stable' option.
Please accept an answer once your question has been solved.
Stefano
2014년 6월 4일
Well, only with unique() in the following code:
[C,ia,idx] = unique(x1);
val = accumarray(idx,y1,[],@mean);
your_vals = interp1(C,val,x2,'linear'); %extrap is dangerous for my data
plot(x1,y1,x2,your_vals,'go');
I achieve this graph, that is the same of the previous:
I would to be sure that I have not made mistakes and there is not another solution
José-Luis
2014년 6월 4일
There are plenty of solutions. Which ones are reasonable depend on what your data is and what you are trying to achieve.
What I mean by unique() values is more like this (untested code):
your_x2 = unique(x2);
your_vals = interp1(C,val,your_x2,'linear');
plot(x1,y1,'b*',your_x2,your_vals,''b-');
José-Luis
2014년 6월 5일
Did you try using it with the data you posted?
José-Luis
2014년 6월 6일
I you don't order your data, the line they draw is bound to look like that. If the problem is one of visualization then I would suggest you ditch the line and plot your results as points only.
judy abbott
2017년 9월 21일
Please how i can use the code on Matlab R2010
y1 = [350 770 800 920 970 990 1020 1054 1080 1100];
x1=[10 10 11 14 13 12 10 10 10 7];
x2 = [10 10 13 13 15 13 13 10 10 10];
[C,ia,idx] = unique(x1,'stable');
val = accumarray(idx,y1,[],@mean); %You could take something other than the mean.
your_vals = interp1(C,val,x2,'linear','extrap'); %see interp1() for other interpolation methods. Extrapolation is dangerous.
plot(x1,y1,'b*',x2,your_vals,'r+');
i get ??? Error using ==> unique Unrecognized option
Chad Greene
2017년 9월 24일
Hi Judy, Just a heads up, you'll typically have better luck getting an answer to a question if you start a new question. Most people on the forum focus on the unanswered questions, so your comment at the bottom of a list of comments in the answer to a years-old question is likely to go unseen. If you still need an answer I suggest asking a new question.
추가 답변 (4개)
Chad Greene
2014년 6월 3일
I don't think interpolation would be appropriate here. You could fit a best-fit line using a least-squares solution, then plug your x2 values into your equation. For example for a linear fit:
P = polyfit(x1,y1,1);
y2 = P(1)*x2 + P(2);
Stefano
2014년 6월 3일
댓글 수: 1
Chad Greene
2014년 6월 3일
It cannot match exactly. You have 5 different values of y1 when x1 equals 10, so it's impossible to come up with a single accurate value of y2 when x2 equals 10. Least squares minimizes the errors. If a linear least squares solution is insufficient for your full data set, try quadratic, cubic, or higher.
Chad Greene
2014년 6월 3일
y1 = [350 770 800 920 970 990 1020 1054 1080 1100];
x1 = [10 10 11 14 13 12 10 10 10 7];
x2 = [10 10 13 13 15 13 13 10 10 10];
plot(x1,y1,'bo'); hold on
P = polyfit(x1,y1,1);
y2 = P(1)*x2 + P(2);
xrange = 7:15;
bestFit = P(1)*xrange + P(2);
plot(xrange,bestFit,'k-')
plot(x2,y2,'r*')
legend('y1','linear-fit','y2','location','southeast')
Stefano
2014년 6월 3일
0 개 추천
댓글 수: 1
Chad Greene
2014년 6월 3일
I added the xrange so I could include the bestFit line. It's only to show that any x values you put in x2 will give y2 values along the black line.
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