Problem with using symbolic integration

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Yasho Bharat Boggarapu
Yasho Bharat Boggarapu el 6 de Mayo de 2020
Comentada: David Goodmanson el 6 de Mayo de 2020
This is my expression
l = 0.0357;
u = 0.9;
p = 5.1;
q =3;
f= ((x-l)^(p-1)*(u-x)^(q-1)/(beta(p,q)*(u-l)^(p+q-1)));
F = (int(f,x,[l x]))
For these values it gives me a solution , where as when I change the value of say q=3.1 , it doesnt solve it . I get this back with some big integers
int((2305843009213693952*(9/10 - x)^(21/10)*(x - 357/10000)^(41/10))/6549555978944313, x, 357/10000, x)
Can anyone help me find the problem?
  1 comentario
Yasho Bharat Boggarapu
Yasho Bharat Boggarapu el 6 de Mayo de 2020
sorry , I forgot to mention "syms x" in the first line.

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David Goodmanson
David Goodmanson el 6 de Mayo de 2020
Hello Yasho,
For any reasonable q, integrating from l to u gives F = 1 by definition of the beta function. When q is an integer, integration from l to an arbitrary x0 gives an answer because symbolic can expand out (u-x)^(q-1) as a polynomial. So for q = 3 you can see a quadratic as part of the answer.
When both p and q are nonintegers and an arbitrary x0 as the upper limit, you have an incomplete beta function which has to be done numerically.
  5 comentarios
Yasho Bharat Boggarapu
Yasho Bharat Boggarapu el 6 de Mayo de 2020
But ,I have noticed that beta calculates for any real value of (p,q). Then ,how does it affect the integration ?
David Goodmanson
David Goodmanson el 6 de Mayo de 2020
it allows you to always have an answer for the denominator of the integrand which is good, but it does not affect the conclusion in the previous comment I wrote.

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