Answer to Question #115713 in Real Analysis for Sheela John

1)Let "(a,b)" be an open interval. Take arbitrary "x\\in(a,b)". We have "B_\\delta(x)\\subset(a,b)",where "\\delta=\\min\\{x-a,b-x\\}", so "x" is an interior point of "(a,b)".

Since we take arbitrary "x\\in(a,b)", we obtain that every point of "(a,b)" is an interior point of "(a,b)", so "(a,b)" is an open set.

2)Let "[a,b]" be a closed interval. Take arbitrary "x\\in\\mathbb R\\setminus[a,b]". We have "B_\\delta(x)\\subset\\mathbb R\\setminus[a,b]", where "\\delta=\\min\\{|x-a|,|b-x|\\}", so "x" is an interior point of "\\mathbb R\\setminus[a,b]".

Since we take arbitrary "x\\in\\mathbb R\\setminus[a,b]" , we obtain that every point of "\\mathbb R\\setminus[a,b]" is an interior point of "\\mathbb R\\setminus[a,b]" , so "\\mathbb R\\setminus[a,b]" is an open set. By the definition of closed set we have "[a,b]=\\mathbb R\\setminus(\\mathbb R\\setminus[a,b])" is a closed set.