Solving an implicit equation

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Marco Turrini
Marco Turrini on 28 Jul 2020
Edited: David Goodmanson on 28 Jul 2020
Hello!
I am trying to solve an equation that has the following shape
Where C(x) is a numeric vector, a is a constant, and P is the function I am trying to obtain.
What I have done up until now is choosing the values of my variable x, from which I get the values of and then I use a numerical scheme based on a matrix inversion (home-made) to get the value of P at the preset values of x.
I have looked into solve or fsolve but I feel it's not quite what I am trying to do!
If this speaks to you I'd be happy to see an example of how you would approach the problem.
Thank you so much
Marco

Answers (1)

Walter Roberson
Walter Roberson on 28 Jul 2020
If C is a non-zero constant, then there is no continually-continuous solution for P.
Proof: do a taylor expansion of P(x) and subtract the taylor expansion of P(a*x) . The taylor expansion is going to be a series of polynomial terms, constant * x^power . For any one of the terms, substituting a*x would give you constant * a^power * x^power -- all except for the linear constant, corresponding to x^0 . Subtaction of constant*x^power and constant*a^power*x^power can be paired off, constant * (1-a^power) * x^power . But when you get to the linear constant, it is required to be the same for both P(x) and P(a*x) by definition, so subtracting there must give 0. Therefore the taylor expansion of P(x)-P(a*x) would be a polynomial with a zero constant term, just terms with x^power and power >= 1.
Now we supposed that C is a non-zero constant, but we have shown the the constant term of the taylor series must be 0.
We therefore have two possibilities: (1) the contradiction that C is not a non-zero constant (but could be 0); or (2) that no taylor series can be constructed for P(x) because some derivative of C is singular.
Even stronger than that: it cannot just be a problem with calculating the taylor expansion around some particular initial point, it has to be a problem with calculating the taylor expansion around every initial point. For example although 1/x cannot be expanded around initial point 0, it can be expanded around initial point delta, delta ~= 0, and by the same logic I went through above, the result of expanding P(x) - P(a*x) would still be polynomial in form with a 0 constant term.
For example my argument would not apply to a function such as P(x) = floor(x^2) because floor does not have continuous derivatives to form a taylor series of.
If we suppose that P(x) is continually-continuous and C(x) is a function of x that i continually-continuous then you can proceed by taylor expansion arguments on both sides of P(x)-P(a*x) = C(x) . You run into the same issue, that if C(x) has a constant term then there is no solution, and otherwise the solution is where the subscripts refer to corresponding terms of their taylor expansion. If C(x) is a polynomial (with zero constant term) then you can construct P(x) directly.
  1 Comment
David Goodmanson
David Goodmanson on 28 Jul 2020
Edited: David Goodmanson on 28 Jul 2020
Hi Walter,
It seems fair to mention that if you do not require the entire real line for a solution space, then there is a solution with C(x) = constant:
b*log(x) - b*log(a*x) = -b*log(a) = C(x) x>0 a>0
or even
b*log(abs(x)) - b*log(a*abs(x)) = -b*log(a) = C(x) x~=0 a>0
and since b can be of either sign, so can C(x).

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