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I have the following set of equations, and I want to solve them simultaneously for X and Y. I've been advised that I could use numpy to solve these as a system of linear equations. Is that the best option, or is there a better way?

a = (((f * X) + (f2 * X3 )) / (1 + (f * X) + (f2 * X3 ))) * i
b = ((f2 * X3 ) / (1 + (f * X) + (f2 * X3))) * i
c = ((f * X) / (1 + (j * X) + (k * Y))) * i
d = ((k * Y) / (1 + (j * X) + (k * Y))) * i 
f = 0.0001 
i = 0.001
j = 0.0001
k = 0.001 
e = 0 = X + a + b + c 
g = 0.0001 = Y + d 
h = i - a
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1  
In addition to numpy, which is probably the right answer, check out sympy. –  agf Apr 14 '12 at 23:44
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I believe numpy.solve(someMatrix) would do quite nicely. –  Joel Cornett Apr 15 '12 at 0:20
    
Thank you, both. I was also wondering whether I should install sympy or scipy. My understanding is that they overlap, but what is the benefit of one over the other? If you have had experience with either, I would appreciate the feedback. Thanks again. –  Nina Apr 15 '12 at 1:23
    
scipy/numpy is for (fast) numerical work, sympy is for symbolic work. e.g. the equivalent of solve(x^2 - 2 == 0) will give the float 1.414213 in scipy, and an object representing sqrt(2) exactly in sympy. i.e. they are different. –  dbaupp Apr 15 '12 at 2:09
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Well, you have a system of non-linear equations in terms of X and Y. If you need X and Y, linear algebra can't directly solve this problem. A symbolic solver like sympy (or maple or mathematica) might be more help. Alternately, you could go for a non-linear numerical solution. –  Joe Kington Apr 15 '12 at 21:37

1 Answer 1

As noted by Joe, this is actually a system of nonlinear equations. You are going to need more firepower than numpy alone provides.

Solution of nonlinear equations is tricky, and the typical approach is to define an objective function

F(z) = sum( e[n]^2, n=1...13 )

where z is a vector containing a value for each of your 13 variables a,b,c,d,e,f,g,h,i,X,Y and e[n] is the amount by which each of your 13 equations is violated. For example

e[3] = (d - ((k * Y) / (1 + (j * X) + (k * Y))) * i  )

Once you have that objective function, then you can apply a nonlinear solver to try to find a z for which F(z)=0. That of course corresponds to a solution to your equations.

Commonly used solvers include:

Note that all of them will work far better if you first alter your set of equations to eliminate as many variables as practical before trying to run the solver (e.g. by substituting for k wherever it is found). The reduced dimensionality makes a big difference.

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