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If I have an expression such as c1 / (c2*s + c3) I would like sympy to transform the expression to a template looking like C1 / (s + C2) such that C1 = c1/c2 and C2 = c3/c2.

Is there an easy way to do that?

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Normally one would use Wild and match to do this, but they don't seem to be powerful enough to recognize that one expression is really in the form of the other. – asmeurer Mar 19 '13 at 16:50
    
Yes, the result has to have exactly the same form as the "wildcard"-structure. It could be a nice feature to include. – aagaard Mar 20 '13 at 10:08

Ok, I'm not sure if this will always work but still

from sympy import Symbol, simplify

c1 = Symbol('c1')
c2 = Symbol('c2')
c3 = Symbol('c3')
s  = Symbol('s')
C1 = Symbol('C1')
C2 = Symbol('C2')

c1 = C1*c2
c3 = c2*C2

exp = c1 / (c2*s + c3)
exp = simplify(exp)

Hope this helps.

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