GCD for Negative Integers

Theorem
Let $a$ and $b$ be integers.


 * $\gcd \set {a, b} = \gcd \set {\size a, b} = \gcd \set {a, \size b} = \gcd \set {\size a, \size b}$

Alternatively, this can be put:


 * $\gcd \set {a, b} = \gcd \set {-a, b} = \gcd \set {a, -b} = \gcd \set {-a, -b}$

which follows directly from the above.

Proof
Note that $\size a = \pm a$.

Suppose that:
 * $u \divides a$

where $\divides$ denotes divisibility.

Then:
 * $\exists q \in \Z: a = q u$

Then:
 * $\size a = \pm q u = \paren {\pm q} u \implies u \divides \size a$

So every divisor of $a$ is a divisor of $\size a$.

Similarly, note that:
 * $a = \pm \size a$

so every divisor of $\size a$ is a divisor of $a$.

So it follows that the common divisors of $a$ and $b$ are the same as those of $a$ and $\size b$, and so on.

In particular:
 * $\gcd \set {a, b} = \gcd \set {a, \size b}$

and so on.