13
$\begingroup$

I have not been able to solve this problem. Any insights would be appreciated!

  • Let $x, n > 1$ be integers. Suppose that for each $k > 1$ there exists an integer $a_{k}$ such that $x − a_k^n$ is divisible by $k$. Prove that $x = A^{n}$ for some integer $A$.
  • 1
    I changed this to what I think you meant.2010-10-16
  • 0
    Is this what you meant to say? Let x,n>1 be integers. Suppose that for each $k>1$ there exists an integer $a_k$ such that $x−{a_k}^n$ is divisible by k. Prove that $x=A^n$ for some integer $A$.2010-10-16
  • 0
    In fancy language: if $x$ is locally an $n$-th power, then $x$ is globally an $n$-th power. This is a (sucessful) instance of Hasse's local-global principle: http://en.wikipedia.org/wiki/Hasse_principle2010-10-16
  • 5
    See also http://math.stackexchange.com/questions/6758/showing-x8-equiv-16-pmodp-is-solvable-for-all-primes-p which shows that solvability for all primes is not enough. A complete solution is in "A Conjecture of Chowla" by Ankeny and Rogers: http://www.jstor.org/stable/19695712010-10-18
  • 0
    This is IMO Shortlist 2007, Problem N2. https://www.imo-official.org/problems/IMO2007SL.pdf2015-12-17

5 Answers 5

3

Choose $\,k=x^2\Rightarrow\,x^2\mid x-a^n\Rightarrow\, x\mid a^n\,$ so $\ \color{#c00}{ a^n\! = mx}\ $ so $\ jx^2\! = x-\!\overbrace{mx}^{\Large\ a^n} $ for some integers $\,j,m.\,$ Notice $\,m = 1-jx\,$ is coprime to $\,x,\,$ so like $\,\color{#c00}{a^n,\ m\ \&\ x}\,$ must be $\,n$'th powers too.

16

Am I mistaken, or does the following (actually) elementary proof work?

For any prime $p$, let $r_p$ be the largest integer such that $p^{r_p}$ divides $x$. Consider $k=p^{r_p+1}$. Then, since $k$ divides $a_k^n -x$, $p^{r_p}$ divides $a_k^n$.

Assume for the sake of contradiction that $r_p$ is not divisible by $n$. Let $[z]$ denote the least integer greater than $z$, where $z$ is real. Since $p^{r_p}$ divides $a_k^n$, $p^{[r_p/n]}$ divides $a_k$, so since $n \cdot [r_p/n]>r_p$, $n \cdot [r_p/n]\ge r_p+1$. Then, $k=p^{r_p+1}$ divides $p^{n \cdot [r_p/n]}$ which divides $a_k^n$, so $k$ divides $x$, which contradicts the maximality of $r_p$.

Thus, for all $p$, $n$ divides $r_p$, so $x$ is an $n$th power.

  • 0
    "(If $r_p$ is not divisible by $n$) then $k=p^{r_p+1}$ divides $a_k^n$" -- why, actually?2012-11-04
  • 0
    I added more details to the above proof to answer your question.2012-11-08
  • 0
    Looks like it actually works. Nice!2012-11-09
  • 0
    I so enjoy seeing a "difficult theorem" proven with such elegance. Lovely work!2014-10-04
  • 0
    @KierenMacMillan One can give even shorter elementary proofs, e.g. see [my answer here.](http://math.stackexchange.com/a/1847906/242)2016-07-03
14

If I am not mistaken, the question has a more elementary answer than those provided so far. I will use the functions $\operatorname{ord}_p: \mathbb{Q}^{\times} \rightarrow \mathbb{Z}$, defined to be the largest power of $p$ appearing in the numerator minus the largest power of $p$ appearing in the denominator.

Step 1: A positive rational number $x$ is a rational $n$th power iff for all primes $p$, $\operatorname{ord}_p(x)$ is divisible by $n$.

This is an easy consequence of unique factorization in $\mathbb{Z}$.

Step 2: A positive integer $x$ is an integral $n$th power iff for all primes $p$, $\operatorname{ord}_p(x)$ is divisible by $n$.

This follows easily from Step 1 using the fact that since $\mathbb{Z}$ is a UFD, it is integrally closed. (Alternately, apply the rational roots theorem to the polynomial $t^n - x$.)

Step 3: As in lhf's comment above, I claim that the given condition on $x$ implies that $x$ is an nth power in $\mathbb{Q}_p$ for all primes $p$. Indeed, taking $k$ to be a prime power, it implies that for all positive integers $a$, the congruence $t^n -x \equiv 0 \pmod{p^a}$ has a solution, and by a routine application of Hensel's Lemma, this implies that $x$ is an $n$th power in $\mathbb{Q}_p$.

Step 4: Since $x$ is an $n$th power in $\mathbb{Q}_p$, the $p$-adic valuation $v_p(x)$ is divisible by $n$. For a rational number $x$, this means that $\operatorname{ord}_p(x)$ is divisible by $n$. And we are done.

As regards the fancy stuff, perhaps people are thinking of the Grunwald-Wang Theorem.

This says that if $x$ is an element of a global field $K$ which is an $n$th power in all but finitely many completions at finite places $v$. Actually, this is "Grunwald's theorem", i.e., it isn't quite true! Wang showed that there are counterexamples to this statement, even over $\mathbb{Q}$ (if one uses all but finitely many places, rather than all places): see the wikipedia article for an explanation. The easy proof that I give above works in any global field which is the fraction field of a PID $R$, with the conclusion that $x$ comes out to be an $n$th power up to a unit of $R$. (When $R = \mathbb{Z}$, requiring $x$ to be positive fixes the unit ambiguity.)

  • 0
    I'm not exactly sure if invoking the $p$-adic integers and their valuation is something that can really be called "elementary"; of course, in fairness you said "more elementary"; perhaps like K2 is "lower than" Everest... (-:2010-10-17
  • 1
    @Arturo: right, I said "more elementary", as in more elementary than deep global results like Chebotarev density, Grunwald-Wang or even Dirichlet's theorem.2010-10-17
  • 0
    very nice! It looks like Step 3 uses a stronger hypothesis than Robin and I were using (divisibility by prime powers instead of primes).2010-10-18
  • 3
    @Arturo : I think the above proof would look much easier if you take into account the fact that step 1 could be skipped, step 3 is essentially the definition of $\mathbb{Z}_p$ and step 4 is the additivity of the $p$-adic valuations. None of these facts require much knowledge about $p$-adic integers beyond their definition (as an inverse limit).2011-05-06
  • 0
    @PeteL.Clark In fact one can go even more elementary, e.g. see my answer.2016-07-03
11

This is an old chestnut: an integer which is an $n$-th power modulo all primes is an $n$-th power.

There is a sledgehammer proof via the Chebotarev density theorem. Suppose for the moment that $n$ is prime. Consider $K=\mathbb{Q}(x^{1/n})$ and its Galois closure $L=\mathbb{Q}(x^{1/n},\exp(2\pi i/n))$. Then each prime $p$ that is unramified in $L$ splits in $K$ into various prime ideals at least one of which has norm $p$. So its Frobenius has a fixed point on the permutation representation on the $n$-th roots of $x$. By Chebotarev, the Galois group $G$ of $L/\mathbb{Q}$ has no element of degree $n$ and so must have a fixed point; that is one of the $n$-th roots of $x$ must lie in $\mathbb{Q}$.

I'm sure something similar works for any positive integer $n$, but it's too late tonight for me to work out the details :-)

  • 0
    In fact, it's enough to assume that the integer is an $n$th power modulo almost all primes, if I remember correctly.2010-10-16
  • 2
    @Arturo: usually, but not always. Please see the wikipedia article on Grunwald-Wang linked to below.2010-10-17
  • 0
    1) The first claim seems to be _wrong_ : $x^8-16$ has roots mod $p$ for every prime $p$, but not in $\Bbb Z$ (nor modulo $32$) $$ $$ 2) This argument when $n$ is prime implies the result when $n$ is square-free, since an integer being an $a$-th power and a $b$-th power is an $ab$-th power whenever $a$ and $b$ are coprime. $$ $$ 3) For squares, it's enough to assume for a set of primes of density $>1/2$, see https://math.stackexchange.com/questions/80419.2018-11-05
10

To be a little more concrete, here's the proof for $n = 2$. We proceed by proving the contrapositive. Suppose $x$ is not a square, so write $x = k^2 p_1 p_2 ... p_n$ where the $p_i$ are distinct primes, one of which may be $-1$. By quadratic reciprocity, together with the CRT, there exists an arithmetic progression such that any prime $q$ in that arithmetic progression has the property that $\left( \frac{p_i}{q} \right) = 1$ for $1 \le i \le n-1$ and $\left( \frac{p_i}{q} \right) = -1$ for $i = n$. A prime $q$ exists in this arithmetic progression by Dirichlet's theorem (a special case of Chebotarev's density theorem!), and $x$ is not a square $\bmod q$.

Similarly for $n = 3$ one can give a proof using cubic reciprocity, and so on. In general it should be possible to give a proof along these lines using Artin reciprocity, but if you're using Artin reciprocity and Dirichlet's theorem you might as well use the full strength of Chebotarev.

  • 2
    This approach appears in second page of Marshall Hall, "Quadratic residues in factorization", *Bull. Amer. Math. Soc.* 39 (1933), no. 10, 758–763. [doi](http://dx.doi.org/10.1090/S0002-9904-1933-05730-0)2011-04-18