Piecewise Cubic Hermite Interpolating Polynomial (PCHIP)

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Bhomik Luthra
Bhomik Luthra le 14 Juin 2013
Hello friends
I am doing cubic interpolation for the data x = [5.8808 6.5137 7.1828 7.8953]; y = [31.2472 33.9977 36.7661 39.3567];
pp = pchip(x,y);
Now pp gives coefficients of the polynomials but why they are not satisfying the data points, I am not able to understand, why is it happening like that?
If anyone knows about it, please let me know
Thanks
Bhomik

Réponse acceptée

Richard Brown
Richard Brown le 14 Juin 2013
It works perfectly
x = [5.8808 6.5137 7.1828 7.8953];
y = [31.2472 33.9977 36.7661 39.3567];
pp = pchip(x,y);
You could draw a picture
xs = linspace(5, 8, 200);
ys = ppval(pp, xs);
plot(xs, ys, 'b-', x, y, 'ro')
Or test the function values
ppval(pp, x) - y
Where's the problem?
  1 commentaire
Bhomik Luthra
Bhomik Luthra le 14 Juin 2013
Hi Richard
I meant to say that if you try this command
x = [5.8808 6.5137 7.1828 7.8953];
y = [31.2472 33.9977 36.7661 39.3567];
pp = pchip(x,y)
and now see pp. It gives pp as
form: 'pp'
breaks: [5.8808 6.5137 7.1828 7.8953]
coefs: [3x4 double]
pieces: 3
order: 4
dim: 1
and pp.coefs are -0.0112 -0.1529 4.4472 31.2472
-0.3613 0.0884 4.2401 33.9977
-0.0422 -0.3028 3.8731 36.7661
I am not able to understand what these coefficients are? I think these are the polynomials representing the three intervals [5.8808:6.5137],[6.5137:7.1828],[7.1828:7.8953]
I tried to check the value of this fitting polynomial at the data points but it gives negative y values for second polynomial . Even third polynomial do not seem to satisfy the points.
I used these commands for obtaining the values
(for second polynomial)
xs = linspace(6.5137, 7.1828, 200);
y = polyval(pp.coefs(2,:),xs);
plot(xs,y)
I am trying this way because I wanted to find the area under the curve of the polynomials for my project, I am trying to obtain the functions and then integrating it over the x range.
But due to this issue, I think, these coefficients are not correct. If you know any other way to find the area of curve using your method, i.e. just by having the y values and x values, please let me know.
Thanks
Bhomik Luthra

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