Fourth order approx. of first derivative.

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Jim Oste
Jim Oste 2015년 2월 25일
댓글: John D'Errico 2015년 2월 25일
I am working with numerical differentiation and I am approximating the first derivative of f(x)=sin^2(x) with a fourth order approximation of the form:
I have the following code to approximate f'(x) at a = pi/4
k = 1:15;
h = 10.^(-k);
a = pi/4;
D = (1/12.*h).*(-3.*sin(a-h).^2-10.*sin(a).^2+18.*sin(a+h).^2-...
6.*sin(a+2.*h).^2+sin(a+3.*h).^2);
As h gets smaller D should be getting closer to 1 but when I run this code D gets closer to zero. Am I imputing the sin term incorrectly?

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Roger Stafford
Roger Stafford 2015년 2월 25일
Your code for 'D' has an error. You have multiplied by 'h' instead of dividing by it. The code should read:
D = (1/12./h).*(-3.*sin(a-h).^2 ...........
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Jim Oste
Jim Oste 2015년 2월 25일
Exactly, we were getting practice with numerical differentiation and using Taylor expansions to find approximations with varying offsetted polynomials.
John D'Errico
John D'Errico 2015년 2월 25일
I thought so. A worthwhile thing to do is to look at the centered difference to compute that same value, varying over -2h to +2h. Why would it be a better choice of method in general? Thus, something like this (assuming I did my back of the envelope computations properly)
((f(2h) - f(-2h)) - 8*(f(h) - f(-h)))/(12h)
Why might the above template be a better choice in general, if it is available?

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