Inner product: Difference between revisions

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imported>Hendra I. Nurdin
(Start: Inner product)
 
imported>Paul Wormer
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==Formal definition of inner product==
==Formal definition of inner product==
Let ''X'' be a vector space over a [[field|sub-field]] ''F'' of the [[complex number|complex numbers]]. An inner product <math>\langle \cdot,\cdot \rangle</math> on ''X'' is a map from <math>X \times X</math> to <math>\mathbb{C}</math> with the following properties:
Let ''X'' be a vector space over a [[field|sub-field]] ''F'' of the [[complex number|complex numbers]]. An inner product <math>\langle \cdot,\cdot \rangle</math> on ''X'' is a ''sesquilinear''<ref>T. Kato, ''A Short Introduction to Perturbation Theory for Linear Operators'', Springer-Verlag, New York (1982), ISBN 0-387-90666-5 p. 49 </ref> map from <math>X \times X</math> to <math>\mathbb{C}</math> with the following properties:
#<math>\langle x,y\rangle=\overline{\langle y,x\rangle}</math>
#<math>\langle x,y\rangle=\overline{\langle y,x\rangle}</math>
#<math>\langle x,y\rangle=0\, \forall y \in X \Rightarrow x=0</math>   
#<math>\langle x,y\rangle=0\, \forall y \in X \Rightarrow x=0</math>   
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Properties 1 and 2 imply that <math>\langle x,y\rangle=0\, \forall x \in X \Rightarrow y=0</math>.  
Properties 1 and 2 imply that <math>\langle x,y\rangle=0\, \forall x \in X \Rightarrow y=0</math>.  


Note that some authors may define an inner product to be anti-linear in the first slot and linear in the second slot, this is just a matter of preference. Moreover, if ''F'' is a subfield of the real numbers <math>\mathbb{R}</math> then the inner product becomes a ''bilinear'' map from <math>X \times X </math> to <math>\mathbb{R}</math>, that is, it becomes linear in both slots.  
Note that some authors, especially those working in [[quantum mechanics]], may define an inner product to be anti-linear in the first slot and linear in the second slot, this is just a matter of preference. Moreover, if ''F'' is a subfield of the real numbers <math>\mathbb{R}</math> then the inner product becomes a ''bilinear'' map from <math>X \times X </math> to <math>\mathbb{R}</math>, that is, it becomes linear in both slots.
==Reference ==
<references />


==Norm and topology induced by an inner product==
==Norm and topology induced by an inner product==

Revision as of 08:37, 5 October 2007

In mathematics, an inner product is an abstract notion on general vector spaces that is a generalization of the concept of the dot product in the Euclidean spaces. Among other things, the inner product on a vector space makes it possible to define the geometric operation of projection onto a closed (in the metric topology induced by the inner product) subspace, just like how the dot product makes it possible to define, in the Euclidean spaces, the projection of a vector onto the subspace spanned by a set of other vectors. The projection operation is a powerful geometric tool that makes the inner product a desirable convenience, especially for the purposes of optimization and approximation.

Formal definition of inner product

Let X be a vector space over a sub-field F of the complex numbers. An inner product on X is a sesquilinear[1] map from to with the following properties:

  1. (linearity in the first slot)
  2. (anti-linearity in the second slot)

Properties 1 and 2 imply that .

Note that some authors, especially those working in quantum mechanics, may define an inner product to be anti-linear in the first slot and linear in the second slot, this is just a matter of preference. Moreover, if F is a subfield of the real numbers then the inner product becomes a bilinear map from to , that is, it becomes linear in both slots.

Reference

  1. T. Kato, A Short Introduction to Perturbation Theory for Linear Operators, Springer-Verlag, New York (1982), ISBN 0-387-90666-5 p. 49

Norm and topology induced by an inner product

The inner product induces a norm on X defined by . Therefore it also induces a metric topology on X via the metric .


See also

Inner product space

Hilbert space

Norm