arXiv Analytics

Sign in

arXiv:1412.1748 [math.FA]AbstractReferencesReviewsResources

Networks for the weak topology of Banach and Fréchet spaces

S. Gabriyelyan, J. Kcakol, W. Kubiś, W. Marciszewski

Published 2014-12-04Version 1

We start the systematic study of Fr\'{e}chet spaces which are $\aleph$-spaces in the weak topology. A topological space $X$ is an $\aleph_0$-space or an $\aleph$-space if $X$ has a countable $k$-network or a $\sigma$-locally finite $k$-network, respectively. We are motivated by the following result of Corson (1966): If the space $C_{c}(X)$ of continuous real-valued functions on a Tychonoff space $X$ endowed with the compact-open topology is a Banach space, then $C_{c}(X)$ endowed with the weak topology is an $\aleph_0$-space if and only if $X$ is countable. We extend Corson's result as follows: If the space $E:=C_{c}(X)$ is a Fr\'echet lcs, then $E$ endowed with its weak topology $\sigma(E,E')$ is an $\aleph$-space if and only if $(E,\sigma(E,E'))$ is an $\aleph_0$-space if and only if $X$ is countable. We obtain a necessary and some sufficient conditions on a Fr\'echet lcs to be an $\aleph$-space in the weak topology. We prove that a reflexive Fr\'echet lcs $E$ in the weak topology $\sigma(E,E')$ is an $\aleph$-space if and only if $(E,\sigma(E,E'))$ is an $\aleph_0$-space if and only if $E$ is separable. We show however that the nonseparable Banach space $\ell_{1}(\mathbb{R})$ with the weak topology is an $\aleph$-space.

Related articles: Most relevant | Search more
arXiv:1504.04202 [math.FA] (Published 2015-04-16)
The Ascoli property for function spaces and the weak topology of Banach and Fréchet spaces
arXiv:1805.07055 [math.FA] (Published 2018-05-18)
Surjectivity in Fréchet spaces
arXiv:2109.13512 [math.FA] (Published 2021-09-28, updated 2022-05-16)
Neural Networks in Fréchet spaces