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If $V$ and $W$ are topological vector spaces (and $W$ is finite-dimensional) then a linear operator $L\colon V\to W$ is continuous if and only if the kernel of $L$ is a closed subspace of $V$.

Why is this so?

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    Since $\ker L = L^{-1}(0)$, one direction is trivial: the singleton $\{0\}$ is closed in $W$, so the continuity of $L$ implies that $\ker L$ is closed in $V$.2012-04-23
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    I see thanks. I have another question If you could perhaps help? Say $M$ is a closed subspace of a Hilbert Space $H$, then we can write $H = M + M^{\perp}$ . Does this hold if M is not closed?2012-04-23
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    As far as I know, the orthogonal decomposition is true only for closed subspaces. I mean, true in general.2012-04-23
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    @rk101 For your second question, maybe you should open an other one. And the answer is no if the Hilbert space is infinite dimensional, since you can find a non-continuous linear functional. Its kernel is a dense strict subspace, so its orthogonal is $\{0\}$.2012-04-23
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    I don't think your solution is corrected. Why do you make sure that" {wn} can't have any convergent subsequence, and kerL is not closed". In this case, KerL is not compact, so it doesn't require that every sequence in a closed subset must be have convergent subsequence.2013-03-27

2 Answers 2

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Assume $W=\mathbb{R}$ for simplicity. If $L$ is not continuous at zero, there is a sequence $\{v_n\}$ in $V$ such that $|v_n|=1$ and $|Lv_n| \to +\infty$. Assume that $L \neq 0$, the null map. Then you can fix $z \in V$ such that $Lz=1$. Consider now $w_n=v_n-(Lv_n)z \in V$. Trivially, $Lw_n=0$, so that $w_n \in \ker L$. But $$|w_n| \geq \left| |L v_n| |z| - |v_n| \right| \to +\infty.$$ Hence $\{w_n\}$ can't have any convergent subsequence, and $\ker L$ is not closed. This is the proof if $V$ has a norm. In the general case, the reasoning is rather similar, but one needs to know the concept of balanced neighborhood. A precise reference is Theorem 1.18 of Rudin, Functional Analysis.

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    What does $|v_n|$ mean if $v_n\in V$, a topological vector space which may be not a normed space?2012-04-23
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    You are right, and I'm not very familiar to topological vector spaces without a (semi)norm. The proof follows similar lines, but the unit ball is replaced by a fixed neighborhood of zero.2012-04-23
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    You don't need to assume that $L \neq 0$. If $L = 0$, then it is automatically continuous, and the kernel, the whole space, is closed.2013-02-12
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    Wouldn't your argument about a convergent subsequence just imply that ker L is not compact, not open?2013-02-12
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    How is showing an unbounded sequence exists in a set proving this set being closed? There are closed sets that contain unbounded sequences. Please explain.2013-12-11
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    The explanation is very easy: my argument is wrong.2013-12-12
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    Just take your $w_n = z - \frac{v_n}{L(v_n)}$, then $f(w_n) = 0$ for all $n$, but $w_n \rightarrow z$ which is not in the $\ker L$. Therefore $\ker L$ is not closed.2014-09-04
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You need the hypothesis that $V$ and $W$ be Hausdorff, although this is usually given for granted.

One direction is as in Siminore's comment.

For the other, since $\text{ker}L$ is closed, the quotient space $V/\text{ker}L$ is Hausdorff. Algebraically $V/\text{ker}L\cong\text{im}L,$ and $\text{im}L$ is a subspace of $W.$ The algebraic isomorphism $V/\text{ker}L\cong\text{im}L$ derived from $L$ is a topological isomorphism because finite-dimensional spaces admit only one Hausdorff topological vector space topology (any linear isomorphism between finite-dimensional Hausdorff topological vector spaces is a topological isomorphism). This means that $L$ is continuous, as a composition of the quotient map $V\to V/\text{ker}L$ with the isomorphism between $V/\text{ker}L$ and $\text{im}L$ with the inclusion $\text{im}L\to W.$

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    You only need $W$ to be Hausdorff for this argument to work.2012-04-23