In topology and related areas of mathematics, the set of all possible topologies on a given set forms a partially ordered set. This order relation can be used for comparison of the topologies.
A topology on a set may be defined as the collection of subsets which are considered to be "open". (An alternative definition is that it is the collection of subsets which are considered "closed". These two ways of defining the topology are essentially equivalent because the complement of an open set is closed and vice versa. In the following, it doesn't matter which definition is used.)
For definiteness the reader should think of a topology as the family of open sets of a topological space, since that is the standard meaning of the word "topology".
Let ÃÂ<sub>1</sub> and ÃÂ<sub>2</sub> be two topologies on a set X such that ÃÂ<sub>1</sub> is contained in ÃÂ<sub>2</sub>:
That is, every element of ÃÂ<sub>1</sub> is also an element of ÃÂ<sub>2</sub>. Then the topology ÃÂ<sub>1</sub> is said to be a coarser (weaker or smaller) topology than ÃÂ<sub>2</sub>, and ÃÂ<sub>2</sub> is said to be a finer (stronger or larger) topology than ÃÂ<sub>1</sub>.
If additionally
we say ÃÂ<sub>1</sub> is strictly coarser than ÃÂ<sub>2</sub> and ÃÂ<sub>2</sub> is strictly finer than ÃÂ<sub>1</sub>.
The binary relation â defines a partial ordering relation on the set of all possible topologies on X.
The finest topology on X is the discrete topology; this topology makes all subsets open. The coarsest topology on X is the trivial topology; this topology only admits the empty set and the whole space as open sets.
In function spaces and spaces of measures there are often a number of possible topologies. See topologies on the set of operators on a Hilbert space for some intricate relationships.
All possible polar topologies on a dual pair are finer than the weak topology and coarser than the strong topology.
The complex vector space C<sup>n</sup> may be equipped with either its usual (Euclidean) topology, or its Zariski topology. In the latter, a subset V of C<sup>n</sup> is closed if and only if it consists of all solutions to some system of polynomial equations. Since any such V also is a closed set in the ordinary sense, but not vice versa, the Zariski topology is strictly weaker than the ordinary one.
Let ÃÂ<sub>1</sub> and ÃÂ<sub>2</sub> be two topologies on a set X. Then the following statements are equivalent:
(The identity map id<sub>X</sub> is surjective and therefore it is strongly open if and only if it is relatively open.)
Two immediate corollaries of the above equivalent statements are
One can also compare topologies using neighborhood bases. Let ÃÂ<sub>1</sub> and ÃÂ<sub>2</sub> be two topologies on a set X and let B<sub>i</sub>(x) be a local base for the topology ÃÂ<sub>i</sub> at x â X for i = 1,2. Then ÃÂ<sub>1</sub> â ÃÂ<sub>2</sub> if and only if for all x â X, each open set U<sub>1</sub> in B<sub>1</sub>(x) contains some open set U<sub>2</sub> in B<sub>2</sub>(x). Intuitively, this makes sense: a finer topology should have smaller neighborhoods.
The set of all topologies on a set X together with the partial ordering relation â forms a complete lattice that is also closed under arbitrary intersections. That is, any collection of topologies on X have a meet (or infimum) and a join (or supremum). The meet of a collection of topologies is the intersection of those topologies. The join, however, is not generally the union of those topologies (the union of two topologies need not be a topology) but rather the topology generated by the union.
Every complete lattice is also a bounded lattice, which is to say that it has a greatest and least element. In the case of topologies, the greatest element is the discrete topology and the least element is the trivial topology.
The lattice of topologies on a set is a complemented lattice; that is, given a topology on there exists a topology on such that the intersection is the trivial topology and the topology generated by the union is the discrete topology.
If the set has at least three elements, the lattice of topologies on is not modular, and hence not distributive either.