tensor product and dual spaces

Let $k$ be a field and $V$ be a vector space over $k$ . Recall that

$V^{*}=\{f:V\to k\ |\ f\mbox{ is linear}\}$

denotes the dual space of $V$ (which is also a vector space over $k$ ).

Proposition. Let $V$ and $W$ be vector spaces. Consider the map $\phi:V^{*}\otimes W^{*}\to(V\otimes W)^{*}$ such that

$\phi(f\otimes g)(v\otimes w)=f(v)g(w).$

Then $\phi$ is a monomorphism. Moreover if one of the spaces $V$ , $W$ is finite dimensional, then $\phi$ is an isomorphism.

Proof. One can easily check that $\phi$ is a well defined linear map, thus it is sufficient to show that $\mathrm{Ker}(\phi)=0$ . So assume that $F\in V^{*}\otimes W^{*}$ is such that $\phi(F)=0$ . It is clear that $F$ can be (uniquely) expressed in the form

$F=\sum_{i,j}\alpha_{i,j}f_{i}\otimes g_{j},$

where $(f_{i})$ is a basis of $V^{*}$ , $(g_{j})$ is a basis of $W^{*}$ and $\alpha_{i,j}\in k$ . Then for any $v\in V$ and $w\in W$ we have:

$0=\phi(F)(v\otimes w)=\phi(\sum_{i,j}\alpha_{i,j}f_{i}\otimes g_{j})(v\otimes w)=$

$=\sum_{i,j}\alpha_{i,j}\phi(f_{i}\otimes g_{j})(v\otimes w)=\sum_{i,j}\alpha_{% i,j}f_{i}(v)g_{j}(w).$

Since $w\in W$ is arbitrary then we can write this equality in the form:

$0=\sum_{i,j}\alpha_{i,j}f_{i}(v)g_{j}=\sum_{j}(\sum_{i}\alpha_{i,j}f_{i}(v))g_% {j}$

and since $(g_{j})$ are linearly independent we obtain that $\sum_{i}\alpha_{i,j}f_{i}(v)=0$ for all $j$ . Again since $v\in V$ was arbitrary we obtain that $\sum_{i}\alpha_{i,j}f_{i}=0$ for all $j$ . Now since $(f_{i})$ are linearly independent we obtain that $\alpha_{i,j}=0$ for all $i, j$ . Thus $F=0$ .

Now assume that $\mathrm{dim}_{k}V=q<+\infty$ . Let $(v_{i})_{i=1}^{q}$ be a basis of $V$ and let $(v_{i}^{*})_{i=1}^{q}$ be an induced basis of $V^{*}$ . Moreover let $(w_{p})_{p\,\in P}$ be a basis of $W$ . We wish to show that $\phi$ is onto, so let $f:V\otimes W\to k$ be an element of $(V\otimes W)^{*}$ . Define $F\in V^{*}\otimes W^{*}$ by the formula:

$F=\sum_{i=1}^{q}v_{i}^{*}\otimes g_{i},$

where $g_{i}:W\to k$ is such that $g_{i}(w_{p})=f(v_{i}\otimes w_{p})$ . Then for any $v_{j}$ from $(v_{i})_{i=1}^{q}$ and for any $w_{p}$ from $(w_{p})_{p\,\in P}$ we have:

$\phi(F)(v_{j}\otimes w_{p})=\phi(\sum_{i=1}^{q}v_{i}^{*}\otimes g_{i})(v_{j}% \otimes w_{p})=\sum_{i=1}^{q}\phi(v_{i}^{*}\otimes g_{i})(v_{j}\otimes w_{p})=$

$=\sum_{i=1}^{q}v_{i}^{*}(v_{j})g_{i}(w_{p})=g_{j}(w_{p})=f(v_{j}\otimes w_{p})$

and thus $\phi(F)=f$ . $\square$

Remark. The map $\phi$ from the previous proposition is very important in studying algebras and coalgebras (more precisly it is an essence in defining dual (co)algebras). Unfortunetly $\phi$ does not have to be an isomorphism in general. Nevertheless, the spaces $(V\otimes W)^{*}$ and $V^{*}\otimes W^{*}$ are always isomorphic (see this entry (http://planetmath.org/TensorProductOfDualSpacesIsADualSpaceOfTensorProduct) for more details).

Title	tensor product and dual spaces
Canonical name	TensorProductAndDualSpaces
Date of creation	2013-03-22 18:31:51
Last modified on	2013-03-22 18:31:51
Owner	joking (16130)
Last modified by	joking (16130)
Numerical id	6
Author	joking (16130)
Entry type	Theorem
Classification	msc 15A69