solving for simple Integration symbol
Mostrar comentarios más antiguos
When integrate for rho in this equation b/(1-b*rho), I get -log(b*rho-1) which is wrong. It should come out to be -log(1-b*rho).
My code:
syms A B Z a b R T rho
q1 = b/(1-b*rho)
I1 = int(q1,rho)
I1 = - log(b*rho - 1)
Respuesta aceptada
David Goodmanson
el 10 de Abr. de 2020
Editada: David Goodmanson
el 10 de Abr. de 2020
HI AC
d/drho (-)*log(b*rho-1) = (-)*1/(b*rho-1)*b = b/(1-b*rho) = q1
so it is correct. But your result is correct as well.
Ignoring the (-) in front for the moment, your result is
log(1-b*rho) = log((-1)*(b*rho-1)) = log(b*rho-1) + log(-1)
= log(b*rho-1) +i*pi
which differs from the 'int' result by a constant of integration i*pi. Whichever result you want to use would usually be decided by keeping the argument of the log function to be positive.
Más respuestas (0)
Categorías
Más información sobre Symbolic Math Toolbox en Centro de ayuda y File Exchange.
el 10 de Abr. de 2020
el 10 de Abr. de 2020
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
