This question is almost a duplicate to the question Q, but I would like to prove it in a more personalised manner.
The fact, that the individual sets, say $A$ and $B$ are countable, as well as infinite, ensures the existence of some bijective function $f: \mathbb{N} \rightarrow A$ and $g: \mathbb{N} \rightarrow B$ .
Again, $A$ and $B$ being equipotent, there is some bijective function $h: A \rightarrow B$.
Now, consider their union (keeping in mind that they are disjoint). Define a map $\phi: \mathbb{N} \rightarrow A \cup B $ such that,
$\phi(n)= a_{n/2} $ when $n$ is even; $b_{n+1/ 2}$ when $n$ is odd [ $A=\{a_n\}$ and $B=\{b_n\}$ (enumerability permits this) ] Evidently, this mapping is a bijection.
Now, we consider the composition $f^{-1} \phi: A \rightarrow A \cup B$ and $g^{-1} \phi: B \rightarrow A \cup B$. Both of them are bijective. Furthermore, the equipotency between the sets $A$ and $B$ implies that their union is equipotent to either one of them.
We now use this to prove that $\mathbb{Q}$ and $\mathbb{Q}^+$ are of same cardinality.
We now split $\mathbb{Q}^*$ into $\mathbb{Q}^+$ and $\mathbb{Q}^-$ . Their elements are disjoint and both of them are equipotent. We use the previously proved proposition to deduce that $\mathbb{Q}^*$ is equipotent to $\mathbb{Q}^+$.
Is the above proof correct?
How do I extend the deduction to $\mathbb{Q}$ ?
Answer
I first want to note, that in your first comment where you suggest a bijection from $\{0/1,0/2,0/3,\dots\}$ is only correct if you regard $0/x$ as a syntactical object. If you refer to a classical fractional representation of a rational number, then $\{0/1,0/2,0/3,\dots\}=\{0\}$ which is most certainly not bijective with $\mathbb{N}$.
The proof that for countable disjoint $A,B$, there is a bijection between $A\cup B$ and $A,B$ respectively is fine. Let me add, that I think that the countable case is not really rich in terms of awaiting revelations, as a countable union of countable sets is again countable (as you showed for the case of a pair-union) and every countably infinite set is bijective with any other countably infinite set.
This is why I think there are many ways to arrive relatively immediate at your desired result of equipotency of $\mathbb{Q}$ and $\mathbb{Q}^+$:
- You may show that $\mathbb{Q}$ and $\mathbb{Q}^+$ are both countably infinite (e.g. via a diagonal argument a la Cantor), i.e. yielding bijections $f:\mathbb{N}\to\mathbb{Q}$ and $g:\mathbb{N}\to\mathbb{Q}^+$. Then $h:\mathbb{Q}\to\mathbb{Q}^+$, $q\to g(f^{-1}(q))$ may be checked by you to be bijective.
- You can proceed by splitting $\mathbb{Q}=\mathbb{Q}^-\cup(\mathbb{Q}^+\cup\{0\})$ or $\mathbb{Q}=(\mathbb{Q}^-\cup\{0\})\cup\mathbb{Q}^+$ and observe that they are both countably infinite and disjoint. Then you can apply your insight for pair-unions of disjoint countably infinite sets.
As I think these results are relatively immediate, to get a greater deal of new knowledge out of this question, maybe try as an exercise to generalize your results and the related insights as far as possible.
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