Integration by parts, using a change of variables u=4*t
I could not integrate using MatLab, Can you please help me?
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In solving a problem I need to integrate the following function with respect to 't' from the limit 0 to t.
3*2^(1/2)*(1 - cos(4*t))^(1/2)*(a^2 + c^2)^(1/2)
I used the following commands but got the same result as given herewith.
>> syms a c t real
mag_dr = 3*2^(1/2)*(1 - cos(4*t))^(1/2)*(a^2 + c^2)^(1/2)
>> int(mag_dr,t,0,t)
ans =
int(3*2^(1/2)*(1 - cos(4*t))^(1/2)*(a^2 + c^2)^(1/2), t, 0, t)
Let me know the best way(s) to tackle this type of problem.
Accepted Answer
Dyuman Joshi
on 5 May 2021
Edited: Dyuman Joshi
on 6 May 2021
syms t a c
fun = 3*2^(1/2)*(1 - cos(4*t))^(1/2)*(a^2 + c^2)^(1/2);
z = int(fun,t); %gives indefinite integral
%result of integration, z = -(3*sin(4*t)*(a^2 + c^2)^(1/2))/(2*(sin(2*t)^2)^(1/2));
t=0;
res = z - subs(z);
%obtain final result by evaluating the integral, z(t)-z(0), by assigning t & using subs()
1 Comment
Walter Roberson
on 5 May 2021
Edited: Walter Roberson
on 5 May 2021
Not quite.
syms t a c
fun = 3*2^(1/2)*(1 - cos(4*t))^(1/2)*(a^2 + c^2)^(1/2);
z = int(fun,t); %gives indefinite integral
char(z)
z0 = limit(z, t, 0, 'right');
char(z0)
res = simplify(z - z0);
char(res)
fplot(subs(z, [a,c], [1 2]), [-5 5])
fplot((subs(fun,[a,c], [1 2])), [-5 5])
That is, the problem is that the integral is discontinuous at t = 0 and that is why int() cannot resolve it.
More Answers (2)
Walter Roberson
on 5 May 2021
syms a c t real
mag_dr = 3*2^(1/2)*(1 - cos(4*t))^(1/2)*(a^2 + c^2)^(1/2)
z = int(mag_dr, t)
z - limit(z, t, 0, 'right')
The integral is discontinuous at 0, which is why it cannot be resolved by MATLAB.
4 Comments
Dyuman Joshi
on 6 May 2021
The wrong substitution was a mistake on my part, mostly cause I did it in a hurry. I have edited my nswer accordingly as well. Other than that, is subs() a good approach or would you recommend otherwise?
Walter Roberson
on 6 May 2021
limit() is more robust than subs() for cases like this. But limit() is sometimes quite expensive to calculate, or is beyond MATLAB's ability to calculate, even in some finite cases.
Sindhu Karri
on 5 May 2021
Hii
The "int" function cannot solve all integrals since symbolic integration is such a complicated task. It is also possible that no analytic or elementary closed-form solution exists.
For definite integrals, a numeric approximation can be performed by using the "integral" function.
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