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Show that $v_1,...,v_n$ form an orthonormal basis of $\mathbb{R^n}$ for the inner product $\langle v,w\rangle = v^TKw$ for $K > 0$ iff $A^TKA = I$ where $A= (v_1v_2...v_n)$.

How will I be able to do this problem? I know that in order to be an orthonormal basis it must have a unit vector equal to one and must be orthogonal, but how will I be able to show that here?

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    @anonymous it is a positive definite matrix.2012-10-20

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Recall two ways of multiplying matrices. If $A$ is given and $B = (b_1,b_2,\ldots,b_n)$, then $JK = (Jk_1,Jk_2,\ldots,Jk_n)$. In particular, if the transpose of $A$ is $A^T = (a_1,a_2,\ldots,a_n)$, then the product has entries $(AB)_{ij} = a_i^Tb_j$ (for $i,j = 1,\cdots,n)$.

Observe then that $KA = (Ka_1, Ka_2,\ldots, Ka_n)$, so the entries of $A^TKA$ are $(A^TKA)_{ij} = a_i^TKa_j$. Since $\langle a_i,a_j\rangle = a_i^TKa_j$, $i,j = 1,\ldots,n$. I think you can take it from here.

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    Thank you very much! I understand it now because of your help, thanks again!2012-10-22