Symbolic Integration Problem Using Symbolic Math Toolbox

31 Août 2022
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Réponse acceptée
Mise à jour 31 Août 2022
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Dear Matlab users,
I would like to get the integral of a function symbolically in MATLAB. However, MATLAB doesn't give me the integral of this function. Do you have any advice?
Thanks in advance.
MATLAB Codes to run:
clear all; clc;
syms a q mL y nL p s b yA yU mR nR r
KK5=sin(q*pi*(mR*y+nR)/a)*cos((r*pi*(mR*y+nR))/a)*cos((2*p*pi*y)/b);
K5=simplify((-1/2)*((a*r)/(q^2-r^2)*pi)*int(KK5,y,[yA yU]))
It gives me this result:
K5 =
-(a*r*pi*int(cos((pi*r*(nR + mR*y))/a)*sin((pi*q*(nR + mR*y))/a)*cos((2*pi*p*y)/b), y, yA, yU))/(2*(q^2 - r^2))

2 commentaires
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Walter Roberson
Walter Roberson le 31 Août 2022
Integral with respect to which variable? You did not specify a variable of integration, so int() is going to pick one.
Note: when you syms i and syms j then the i and j that result will just be normal variables, with no connection to sqrt(-1) and no connection to coordinate axes. int() will not recognize hyperbolic functions, or possibilities of rewriting in terms of exp()
ercan duzgun
ercan duzgun le 31 Août 2022
Dear Mr. @Walter Roberson;
Thank you very much for your response. You are right to say that I didn't specify the variable of integration. I didn't notice at first. I have edited my codes according to your warnings. I also changed i and j variables to q and p variables.
However, I am still not receiving a normal integrated symbolic expression. Do you have any other advice?

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 Réponse acceptée

Torsten
Torsten le 31 Août 2022
Modifié(e) : Torsten le 31 Août 2022
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syms par1 par2 par3 par4 par5
syms a q p s b mR nR r
syms y yA yU
K5 = cos(par1*y+par2)*sin(par3*y+par4)*cos(par5*y);
K55 = int(K5,y,yA,yU);
K55 = subs(K55,[par1 par2 par3 par4 par5],[q*pi*mR/a q*pi*nR/a r*pi*mR/a r*pi*nR/a 2*pi*p/b]);
K55 = (-1/2)*((a*r)/(q^2-r^2)*pi)*K55;
K55 = simplify(K55)
K55 = 

9 commentaires
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ercan duzgun
ercan duzgun le 31 Août 2022
Dear @Torsten, thank you very much. I didn't think like that before. Your response is very useful. I appreciate your response and help.
Torsten
Torsten le 31 Août 2022
Of course, special cases are excluded, e.g. a=0, b=0, q^2=r^2.
Paul
Paul le 31 Août 2022
Are all of those substitutions correct? It looks like par1 and par2 should be flipped with par3 and par4.
Any idea why using par1-5 and then subsing yields a closed form expression? That seems like a handy trick to remember.
ercan duzgun
ercan duzgun le 31 Août 2022
Dear @Paul, you are right. Those substitutions are not correct. I noticed that they are not correct. However, the methodology to get the integral is useful. I can edit the wrong subsitutions into correct form by myself. Thank you for your warning.
Torsten
Torsten le 31 Août 2022
Better flip "sin" and "cos" in K5 :-)
Paul
Paul le 31 Août 2022
@Torsten
Any insight into why using the par variables allowed int to find a closed from solution, when it couldn't using the original variables? That was very interesting to me.
Torsten
Torsten le 31 Août 2022
Ran in:
Ran in:
Up to here, it works.
One of the new big mysteries of the symbolic toolbox.
syms a q mL y nL p s b yA yU mR nR r
KK5=sin(q*pi*(mR*y+nR))*cos(r*pi*(mR*y+nR)/a)*cos(2*p*pi*y/b);
K5=(-1/2)*((a*r)/(q^2-r^2)*pi)*int(KK5,y,yA,yU);
simplify(K5)
ans = 
Paul
Paul le 31 Août 2022
Ran in:
Ran in:
@Torsten,
It looks like a "divide by a" is missing in your expression for the argument of the sin(). For some reason, including that makes a big difference in the result. Still a mystery
syms a q mL y nL p s b yA yU mR nR r
% KK5=sin(q*pi*(mR*y+nR)) *cos(r*pi*(mR*y+nR)/a)*cos(2*p*pi*y/b);
KK5=sin(q*pi*(mR*y+nR)/a)*cos(r*pi*(mR*y+nR)/a)*cos(2*p*pi*y/b);
K5=(-1/2)*((a*r)/(q^2-r^2)*pi)*int(KK5,y,yA,yU);
simplify(K5)
ans = 
I wonder if there are some allowable values of the parameters (r,q, etc.) that make it not possible to evaluate the integral uniquely
Torsten
Torsten le 31 Août 2022
It looks like a "divide by a" is missing in your expression for the argument of the sin().
Yes, that's why I wrote: Up to here, it works.

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ercan duzgun
ercan duzgun le 31 Août 2022
Modifié(e) : ercan duzgun le 31 Août 2022

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Dear @Torsten, and dear @Paul, ( and dear @Walter Roberson)
I tried to follow @Torsten's last suggestion. Actually, I tried to use both method, however I get different results. Do you have any idea on "why I am getting different results " while using two different codes ?
My codes are like this:
clear all;clc;
%method1
syms a r iv mR nR y yA yU mL nL b jv iv
KK5=sin(iv*pi*(mR*y+nR)/a)*cos(r*pi*(mR*y+nR)/a)*cos(2*jv*pi*y/b)
KKK5=int(KK5,y,[yA yU])
KKKK5=simplify(((-1/2)*((a*r)/((iv^2-r^2)*pi)))*KKK5)
%method2
syms y5 p5 y55 p55 y555
Y5=sin(y5*y+p5)*cos(y55*y+p55)*cos(y555)
YY5=int(Y5,y,[yA yU])
YYY5=subs(YY5,[y5 p5 y55 p55 y555],[(iv*pi*mR/a) (iv*pi*nR/a) (r*pi*mR/a) (r*pi*nR/a) (2*jv*pi/b)])
YYYY5=simplify(((-1/2)*((a*r)/((iv^2-r^2)*pi)))*YYY5)
num_KKK5=eval(subs(KKKK5,[a r iv mR nR y yA yU mL nL b jv],[0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.25 0.35 0.45 0.55]))
num_YYYY5=eval(subs(YYYY5,[a r iv mR nR y yA yU mL nL b jv],[0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.25 0.35 0.45 0.55]))
simplify(KKKK5-YYYY5)
num_KKK5-num_YYYY5
%---
I get : num_KKK5 = -0.0016 , however, num_YYYY5 = -3.2468e-04 . Why different results?
Dear @Torsten , in your last message, you wrote to integrate directly. I can use your code to integrate directly, without using par1 etc. If I use your codes, it can directly integrate without any problem. However, when I tried to use my codes like that in the attachement below (method1), it can not integrate directly. It gives me result as :
KKKK5 =
-(a*r*int(cos((pi*r*(nR + mR*y))/a)*sin((pi*iv*(nR + mR*y))/a)*cos((2*pi*jv*y)/b), y, yA, yU))/(2*pi*(iv^2 - r^2))

2 commentaires
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Torsten
Torsten le 31 Août 2022
Ran in:
Ran in:
After correcting some errors in your code, I get the same result for both approaches.
format long
syms a r iv mR nR y yA yU mL nL b jv iv
KK5=sin(iv*pi*(mR*y+nR)/a)*cos(r*pi*(mR*y+nR)/a)*cos(2*jv*pi*y/b);
KKK5=int(KK5,y,yA,yU);
KKKK5=simplify(((-1/2)*((a*r)/((iv^2-r^2)*pi)))*KKK5);
num_KKK5=double(subs(KKKK5,[a r iv mR nR y yA yU mL nL b jv],[0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.25 0.35 0.45 0.55]))
num_KKK5 =
-0.001632012764608
%method2
syms y5 p5 y55 p55 y555
Y5=sin(y5*y+p5)*cos(y55*y+p55)*cos(y555*y);
YY5=int(Y5,y,yA,yU);
YYY5=simplify(((-1/2)*((a*r)/((iv^2-r^2)*pi)))*YY5);
YYYY5=subs(YYY5,[y5 p5 y55 p55 y555],[(iv*pi*mR/a) (iv*pi*nR/a) (r*pi*mR/a) (r*pi*nR/a) (2*jv*pi/b)]);
num_YYYY5=double(subs(YYYY5,[a r iv mR nR y yA yU mL nL b jv],[0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.25 0.35 0.45 0.55]))
num_YYYY5 =
-0.001632012764608
ercan duzgun
ercan duzgun le 31 Août 2022
Dear @Torsten , thank you very much for your useful reply. I appreciate your response.
Kind regards,

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