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I would like to revisit this question, which can be equivalently stated as:

Proposition. Let $(a_n)$ be a sequence of real (or complex) numbers such that $\sum a_n b_n$ converges for every $(b_n) \in \ell^2$. Then $(a_n) \in \ell^2$.

The proof given here by Bruno Stonek is the only one I know, which applies the uniform boundedness principle to the linear functionals $(b_n) \mapsto \sum_{n=1}^m a_n b_n$ in $(\ell^2)^*$. But I am inclined to agree with GEdgar's comment on Davide Giraudo's answer that this approach, though slick, is "far too advanced".

One could write the contrapositive as:

Let $(a_n)$ be a sequence of real numbers which is not $\ell^2$. Then there exists $(b_n) \in \ell^2$ such that $\sum a_n b_n$ diverges.

A natural way to try to prove that statement would be to explicitly construct such a $(b_n)$, by somehow manipulating $(a_n)$. Our current proof is far from constructive in that sense, since the uniform boundedness principle essentially just says that the set of such $(b_n)$ is comeager in the Hilbert space $\ell^2$, and then uses Baire to assert it is nonempty.

So my question:

Can anyone think of a way to explicitly construct $(b_n)$? Or alternatively, is there some reason to think that such a construction might be impossible?

For instance, as a wild guess, perhaps one could show that any map sending each $(a_n) \notin \ell^2$ to an appropriate $(b_n)$ would have to be nonmeasurable in some sense.

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    Actually, I just noticed Theo Buehler's reference to Sokal's simple proof of the uniform boundedness principle (http://arxiv.org/abs/1005.1585). I think following Sokal might yield a construction; I'll look at it later.2011-08-19

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One can construct explicitly such a sequence $(b_n)$ and this is probably explained in several books of examples and counterexamples in Analysis. Here we go.

Assume without loss of generality that $a_1\ne0$ and, for every $n\geqslant1$, let $A_n=\sum\limits_{k=1}^na_k^2,\qquad b_n=\dfrac{a_n}{A_n}. $ The result the OP is interested in is a consequence of the two claims below.

Claim 1: For every $(a_n)$, the sequence $(b_n)$ is in $\ell^2$.

Claim 2: For every $(a_n)$ not in $\ell^2$, the sequence $(a_nb_n)$ is not in $\ell^1$.

To prove claim 1, note that, for every $n\geqslant2$, $a_n^2=A_n-A_{n-1}$ hence $ b_n^2=\frac{A_n-A_{n-1}}{A_n^2}\leqslant\frac{A_n-A_{n-1}}{A_nA_{n-1}}=\frac1{A_{n-1}}-\frac1{A_n}, $ hence the series $\sum\limits_nb_n^2$ converges (and its sum is at most $2/a_1^2$). (This step does not use the hypothesis that the sequence $(a_n^2)$ is not summable hence that $A_n\to+\infty$).

To prove claim 2, note that, for every $N$ and every $2\leqslant k\leqslant N$, $ a_kb_k=\frac{a_k^2}{A_k}\geqslant\frac{a_k^2}{A_N}=\frac{A_k-A_{k-1}}{A_N}. $ Since the sequence $(a_n^2)$ is not summable, $A_N\to+\infty$ when $N\to\infty$. Hence, for every given $n\geqslant1$, there exists some $N\geqslant n$ such that $A_N\geqslant2A_n$. For every such $N$, $ \sum\limits_{k=n+1}^Na_kb_k\geqslant\frac{A_N-A_{n}}{A_N}\geqslant\frac12. $ This proves that $\sum\limits_{k=n+1}^Na_kb_k$ does not converge to zero when $n$ and $N\to\infty$. Hence, the series $\sum\limits_ka_kb_k$ diverges.

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    No problem. I can imagine the difficulty. I can understand how this happens to French people, but Germans succumb to this slip, too, which I find harder to understand. By the way, you're swearing a lot, lately... :)2019-02-03