Linear algebra (Osnabrück 2024-2025)/Part I/Lecture 14/refcontrol

A linear formMDLD/linear form on ${\displaystyle {}K^{n}}$ is of the form

${\displaystyle K^{n}\longrightarrow K,\left(x_{1},\,\ldots ,\,x_{n}\right)\longmapsto \sum _{i=1}^{n}a_{i}x_{i},}$

for a tuple ${\displaystyle {}\left(a_{1},\,\ldots ,\,a_{n}\right)}$. The projections

${\displaystyle p_{j}\colon K^{n}\longrightarrow K,\left(x_{1},\,\ldots ,\,x_{n}\right)\longmapsto x_{j},}$

are the easiest linear forms.

The zero mapping to ${\displaystyle {}K}$ is also a linear form, called the zero form.

Many important examples of linear forms on some vector spaces of infinite dimension arise in analysis. For a real interval ${\displaystyle {}[a,b]}$, the set of functions ${\displaystyle {}\operatorname {Map} \,{\left([a,b],\mathbb {R} \right)}}$, or the set of continuous functions ${\displaystyle {}C([a,b],\mathbb {R} )}$, or the set of continuously differentiable functions ${\displaystyle {}C^{1}([a,b],\mathbb {R} )}$ form real vector spaces. For a point ${\displaystyle {}P\in [a,b]}$, the evaluation ${\displaystyle {}f\mapsto f(P)}$ is a linear form (because addition and scalar multiplication is defined pointwisely on these spaces). Also, the evaluation of the derivative at ${\displaystyle {}P}$,

${\displaystyle C^{1}([a,b],\mathbb {R} )\longrightarrow \mathbb {R} ,f\longmapsto f'(P),}$

is a linear form. For ${\displaystyle {}C([a,b],\mathbb {R} )}$, the integral, that is, the mapping

${\displaystyle C([a,b],\mathbb {R} )\longrightarrow \mathbb {R} ,f\longmapsto \int _{a}^{b}f(t)dt,}$

is a linear form. This rests on the linearity of the integral.

Let ${\displaystyle {}K}$ be a field,MDLD/field and let ${\displaystyle {}V}$ and ${\displaystyle {}W}$ denote vector spacesMDLD/vector spaces over ${\displaystyle {}K}$. For a linear formMDLD/linear form

${\displaystyle f\colon V\longrightarrow K}$

and a vector ${\displaystyle {}w\in W}$, the mapping

${\displaystyle fw\colon V\longrightarrow W,v\longmapsto f(v)w,}$

is linear.MDLD/linear It is just the composition

${\displaystyle V{\stackrel {f}{\longrightarrow }}K{\stackrel {\iota _{w}}{\longrightarrow }}W,}$

where ${\displaystyle {}\iota _{w}}$ denotes the mapping ${\displaystyle {}s\rightarrow sw}$.

For the standard basisMDLD/standard basis ${\displaystyle {}e_{1},\ldots ,e_{n}}$ of ${\displaystyle {}K^{n}}$, the dual basisMDLD/dual basis consists in the projections onto some component, that is, we have ${\displaystyle {}e_{i}^{*}=p_{i}}$, where

${\displaystyle p_{i}\colon K^{n}\longrightarrow K,\left(x_{1},\,\ldots ,\,x_{n}\right)\longmapsto x_{i}.}$

This basis is called the standard dual basis.

We consider ${\displaystyle {}\mathbb {R} ^{2}}$ with the standard basis ${\displaystyle {}e_{1},e_{2}}$, its dual basisMDLD/dual basis ${\displaystyle {}e_{1}^{*},e_{2}^{*}}$, and the basis consisting in ${\displaystyle {}u_{1}={\begin{pmatrix}2\\1\end{pmatrix}}}$ and ${\displaystyle {}u_{2}={\begin{pmatrix}-1\\3\end{pmatrix}}}$. We want to express the dual basis ${\displaystyle {}u_{1}^{*}}$ and ${\displaystyle {}u_{2}^{*}}$ as a linear combination of the standard dual basis, that is, we want to determine the coefficients ${\displaystyle {}a}$ and ${\displaystyle {}b}$ (and ${\displaystyle {}c}$ and ${\displaystyle {}d}$) in

${\displaystyle {}u_{1}^{*}=ae_{1}^{*}+be_{2}^{*}\,}$

(and in ${\displaystyle {}u_{2}^{*}=ce_{1}^{*}+de_{2}^{*}}$). Here, ${\displaystyle {}a=u_{1}^{*}(e_{1})}$ and ${\displaystyle {}b=u_{1}^{*}(e_{2})}$. In order to compute this, we have to express ${\displaystyle {}e_{1}}$ and ${\displaystyle {}e_{2}}$ as a linear combination of ${\displaystyle {}u_{1}}$ and ${\displaystyle {}u_{2}}$. This is

${\displaystyle {}e_{1}={\frac {3}{7}}{\begin{pmatrix}2\\1\end{pmatrix}}-{\frac {1}{7}}{\begin{pmatrix}-1\\3\end{pmatrix}}\,}$

and

${\displaystyle {}e_{2}={\frac {1}{7}}{\begin{pmatrix}2\\1\end{pmatrix}}+{\frac {2}{7}}{\begin{pmatrix}-1\\3\end{pmatrix}}\,.}$

Therefore, we have

${\displaystyle {}a=u_{1}^{*}(e_{1})=u_{1}^{*}{\left({\frac {3}{7}}u_{1}-{\frac {1}{7}}u_{2}\right)}={\frac {3}{7}}\,}$

and

${\displaystyle {}b=u_{1}^{*}(e_{2})=u_{1}^{*}{\left({\frac {1}{7}}u_{1}+{\frac {2}{7}}u_{2}\right)}={\frac {1}{7}}\,.}$

Hence,

${\displaystyle {}u_{1}^{*}={\frac {3}{7}}e_{1}^{*}+{\frac {1}{7}}e_{2}^{*}\,.}$

With similar computations we get

${\displaystyle {}u_{2}^{*}=-{\frac {1}{7}}e_{1}^{*}+{\frac {2}{7}}e_{2}^{*}\,.}$

The transformation matrixMDLD/transformation matrix from ${\displaystyle {}u^{*}}$ to ${\displaystyle {}e^{*}}$ is thus

${\displaystyle {}M_{\mathfrak {e^{*}}}^{\mathfrak {u^{*}}}={\begin{pmatrix}{\frac {3}{7}}&-{\frac {1}{7}}\\{\frac {1}{7}}&{\frac {2}{7}}\end{pmatrix}}\,.}$

The transposed matrix of this is

${\displaystyle {}{{\left(M_{\mathfrak {e^{*}}}^{\mathfrak {u^{*}}}\right)}^{\text{tr}}}={\begin{pmatrix}{\frac {3}{7}}&{\frac {1}{7}}\\-{\frac {1}{7}}&{\frac {2}{7}}\end{pmatrix}}={\begin{pmatrix}2&-1\\1&3\end{pmatrix}}^{-1}={\left(M_{\mathfrak {e}}^{\mathfrak {u}}\right)}^{-1}\,.}$

The inverse task to express the standard dual basis with ${\displaystyle {}u_{1}^{*}}$ and ${\displaystyle {}u_{2}^{*}}$, is easier to solve, because we can read of directly the representations of the ${\displaystyle {}u_{i}}$ with respect to the standard basis. We have

${\displaystyle {}e_{1}^{*}=2u_{1}^{*}+u_{2}^{*}\,}$

and

${\displaystyle {}e_{2}^{*}=-u_{1}^{*}+3u_{2}^{*}\,,}$

as becomes clear by evaluation ${\displaystyle {}u_{1},u_{2}}$ on both sides.