Conversely, suppose A ∩ cl(X A) = ∅. Let x be a point in A. Then x ∉ cl(X A), and hence there exists an open neighborhood U of x such that U ∩ (X A) = ∅. This implies that U ⊆ A, and hence A is open.
Let x be a point in ∪α cl(Aα). Then there exists α such that x ∈ cl(Aα). Let U be an open neighborhood of x. Then U ∩ Aα ≠ ∅, and hence U ∩ ∪α Aα ≠ ∅. This implies that x ∈ cl(∪α Aα). Let X be a topological space and let A be a subset of X. Show that A is open if and only if A ∩ cl(X A) = ∅. General Topology Problem Solution Engelking
First, we show that cl(A) is a closed set. Let x be a point in X cl(A). Then there exists an open neighborhood U of x such that U ∩ A = ∅. This implies that U ∩ cl(A) = ∅, and hence x is an interior point of X cl(A). Therefore, X cl(A) is open, and cl(A) is closed. Conversely, suppose A ∩ cl(X A) = ∅
General topology is concerned with the study of topological spaces, which are sets equipped with a topology. A topology on a set X is a collection of subsets of X, called open sets, that satisfy certain properties. The study of general topology involves understanding the properties of topological spaces, such as compactness, connectedness, and separability. This implies that U ⊆ A, and hence A is open