# Semi-norm

A finite non-negative function on a vector space (over the field of real or complex numbers) satisfying the following conditions:

for all and all scalars . An example of a semi-norm is a norm; the difference is that a semi-norm may have with . If a semi-norm is defined on a vector space and if is a linear functional on a subspace obeying the condition , then this functional can be extended to the entire space so that the extension satisfies the same condition (the Hahn–Banach theorem). In mathematical analysis one frequently encounters separable topological vector spaces (cf. Topological vector space) in which an -neighbourhood basis exists whose elements are convex sets. Such spaces are said to be locally convex. An open convex -neighbourhood in a locally convex space is of the form , where is a continuous semi-norm. Nevertheless, in mathematical analysis one also encounters topological vector spaces (including spaces with a metrizable topology) on which there exist no non-trivial semi-norms. The simplest examples of such spaces are , .

#### References

[1] | N. Bourbaki, "Topological vector spaces" , Springer (1987) (Translated from French) |

[2] | W. Rudin, "Functional analysis" , McGraw-Hill (1979) |

**How to Cite This Entry:**

Semi-norm.

*Encyclopedia of Mathematics.*URL: http://encyclopediaofmath.org/index.php?title=Semi-norm&oldid=18396