Hi Ravikiran,
I have used a for loop.
syms f(x) x;
f(x) = x/(exp(x)-1);
g = f;
limitg = sym(zeros(15, 1));
for n = 1:15
g = diff(g);
limitg(n) = limit(g, x, 0);
end
Code may throw error of "Devide by Zero".
Thanks,
Deepak
How to calculate derivative and then apply limit in matlab
5 views (last 30 days)
Show older comments
How to calculate diff((x/(exp(x)-1)),x,n) and then apply the limit at x=0 Where n=11,12,13,14,15 I am getting upto 1 to 10 but not from 11 onwards... please anybody help me...
0 Comments
Answers (2)
Deepak Gupta
on 22 Apr 2020
Edited: Deepak Gupta
on 23 Apr 2020
18 Comments
Ameer Hamza
on 23 Apr 2020
Edited: Ameer Hamza
on 23 Apr 2020
I get the same answer, with or without simplify(). I am using R2020a, and from recent questions on this forum, I have noticed that they have improved Symbolic toolbox in this release.
syms x
y = x/(exp(x)-1);
for i=1:15
Dy = simplify(limit(diff(y, i), x, 0));
if Dy == 0
fprintf('i = %d,\t Dy = 0\n', i);
else
[n, d] = rat(Dy);
fprintf('i = %d,\t Dy = %d/%d\n', i, n, d);
end
end
Result:
i = 1, Dy = -1/2
i = 2, Dy = 1/6
i = 3, Dy = 0
i = 4, Dy = -1/30
i = 5, Dy = 0
i = 6, Dy = 1/42
i = 7, Dy = 0
i = 8, Dy = -1/30
i = 9, Dy = 0
i = 10, Dy = 5/66
i = 11, Dy = 0
i = 12, Dy = 0
i = 13, Dy = 0
i = 14, Dy = 0
i = 15, Dy = 0
Ameer Hamza
on 23 Apr 2020
It turns out OP's claim is correct: https://www.wolframalpha.com/input/?i=limit+x-%3E0+d%5E12%2Fdx%5E12+x%2F%28e%5Ex-1%29
This is one of those situations where limitations of MATLAB symbolic toolbox become visible.
Ameer Hamza
on 23 Apr 2020
As discussed in the comment to Deepak's answer. This is a limitation of of MATLAB's symbolic engine. MATLAB calculates the limit for n-th order derivatives for n>10 to be zero
syms x
y = x/(exp(x)-1);
for i=1:15
Dy = simplify(limit(diff(y, i), x, 0));
if Dy == 0
fprintf('i = %d,\t Dy = 0\n', i);
else
[n, d] = rat(Dy);
fprintf('i = %d,\t Dy = %d/%d\n', i, n, d);
end
end
Result
i = 1, Dy = -1/2
i = 2, Dy = 1/6
i = 3, Dy = 0
i = 4, Dy = -1/30
i = 5, Dy = 0
i = 6, Dy = 1/42
i = 7, Dy = 0
i = 8, Dy = -1/30
i = 9, Dy = 0
i = 10, Dy = 5/66
i = 11, Dy = 0
i = 12, Dy = 0
i = 13, Dy = 0
i = 14, Dy = 0
i = 15, Dy = 0
But Wolfram Alpha is able to calculate the limit: https://www.wolframalpha.com/input/?i=limit+x-%3E0+d%5E12%2Fdx%5E12+x%2F%28e%5Ex-1%29. Even this FEX submission by John: https://www.mathworks.com/matlabcentral/fileexchange/20058-adaptive-numerical-limit-and-residue-estimation is not able to converge to a limit. I guess there is nothing much you can do about in MATLAB, other than writing your own closed-form solution if it is possible.
5 Comments
See Also
Categories
Find more on Linear Programming and Mixed-Integer Linear Programming in Help Center and File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
You can also select a web site from the following list
Americas
- América Latina (Español)
- Canada (English)
- United States (English)
Europe
- Belgium (English)
- Denmark (English)
- Deutschland (Deutsch)
- España (Español)
- Finland (English)
- France (Français)
- Ireland (English)
- Italia (Italiano)
- Luxembourg (English)
- Netherlands (English)
- Norway (English)
- Österreich (Deutsch)
- Portugal (English)
- Sweden (English)
- Switzerland
- United Kingdom (English)
Asia Pacific
- Australia (English)
- India (English)
- New Zealand (English)
- 中国
- 日本Japanese (日本語)
- 한국Korean (한국어)