Question:
Let $A := \mathbb{Q} \setminus \{0,1\}$ denote the set of all rationals other than 0 and 1. A function $f : A \rightarrow \mathbb{R}$ has the property that for all $x \in A$,
\[
f\left( x\right) + f\left( 1 - \frac{1}{x}\right) = \log\lvert x\rvert.
\]Compute the value of $f(2007)$.  Enter your answer in the form "$\log(a)$", where $a$ is some number.

Answer:
Let $g : A \to A$ be defined by $g(x) := 1-1/x$; the key property is that \[
g(g(g(x))) = 1-\frac{1}{1-\frac{1}{1-\frac{1}{x}}} = x.
\]The given equation rewrites as $f(x) + f(g(x)) = \log|x|$. Substituting $x=g(y)$ and $x=g(g(z))$ gives the further equations $f(g(y)) + f(g) g(y)) = \log|g(x)|$ and $f(g) g(z)) + f(z) = \log|g(g(x))|.$ Setting $y$ and $z$ to $x$ and solving the system of three equations for $f(x)$ gives \[
f(x) = \frac{1}{2} \cdot \left (\log|x| - \log|g(x)| + \log|g(g(x))| \right).
\]For $x=2007$, we have $g(x) = \frac{2006}{2007}$ and $g(g(x)) = \frac{-1}{2006}$, so that \[
f(2007) = \frac{\log|2007| - \log\left|\frac{2006}{2007}\right| + \log\left|\frac{-1}{2006}\right|}{2} = \boxed{\log\left(\frac{2007}{2006}\right)}.
\]