5
$\begingroup$

Question: For every Banach space $X$ and its subspace $Y$, is there a complemented subspace $Z$ in $X$ such that $Y \subset Z \subset X $ and $\operatorname{card}(Y)=\operatorname{card}(Z)$ i.e., $Y$ and $Z$ have the same cardinality?

The answer is yes if $\operatorname{card}(X)=\mathfrak c$ (i.e., Continuum), the proof is easy by taking a hyperplane $H$ such that $Y \subset H \subset X$, then $\operatorname{card}(Y)=\operatorname{card}(H)=\mathfrak c$.

But I don't know whether it holds for general spaces.

  • 0
    I assume by "subspace" you mean "closed subspace", right?2012-09-12
  • 0
    Yes, I mean "closed", and I has known the answer is no. See the reference : P.~Koszmider, \emph{A space $C(K)$ where all nontrivial complemented subspaces have big densities.} Studia Math. {\bf 168} (2005) 109--1272012-09-13
  • 1
    For those with institutional access: http://journals.impan.gov.pl/sm/Inf/168-2-2.html @Duanxu: would you be so kind as to post this comment into an answer box below, so that this question can be considered settled?2012-09-13

1 Answers 1