Answer to Question #139799 in Functional Analysis for anjali

1)Let "M" be a closed subset of "X", then "M=\\overline{M}".

Take a fundamental sequence "\\{a_n\\}_{n\\in\\mathbb N}\\subset M".

Since "M\\subset X", we have that "\\{a_n\\}_{n\\in\\mathbb N}" is a fundamental sequence in "X". Then there is "\\lim\\limits_{n\\to\\infty}a_n=a" in "X".

Since "\\{a_n\\}_{n\\in\\mathbb N}\\subset M", we have that "a\\in\\overline{M}=M" and so "\\lim\\limits_{n\\to\\infty}a_n=a" in "M".

By the definition of Banach space we have that "M" is a Banach space.

2)Let "M" be a Banach subspace of "X". Take arbitrary "a\\in\\overline{M}".

Then there is "\\{a_n\\}_{n\\in\\mathbb N}\\subset M" such that "\\lim\\limits_{n\\to\\infty}a_n=a".

Since "\\{a_n\\}_{n\\in\\mathbb N}" is a convergent sequence, it is a fundamental sequence, so "\\lim\\limits_{n\\to\\infty}a_n=a\\in M".

Since we take arbitrary "a\\in\\overline{M}", we have "\\overline{M}\\subset M".

We obtain "\\overline{M}=M", because "M\\subset\\overline{M}", that is "M" is closed.