10/01 - Vectors & Functions: Difference between revisions

Vectors & Functions

• How to related the vector v to the sampling?

We could sample a continuous function every T seconds, creating a "bar graph".

${\displaystyle f(t)={\displaystyle \sum _{i=0}^{N-1}}\underset{coefficients}{\underbrace{f(iT)}}\cdot \underset{basisfunctions}{\underbrace{p(t-iT)}}}$

• Where ${\displaystyle p(t)}$ is a rectangle 1 unit high and T units wide

In an effort to make this more exact, will will continue to shrink the rectangle down to the Dirac Delta function, ${\displaystyle \delta }$

• ${\displaystyle \delta (x)=\{\begin{array}{ll}+\mathrm{\infty },& x=0\\ 0,& x\ne 0\end{array}}$
• ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (x)dx=1.}$

By using the Dirac Delta function the summation becomes an integral

${\displaystyle f(t)={\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}f(u)\cdot \delta (t-u)du}$

Changing from one orthogonal basis set to another

We have a vector ${\displaystyle \hat{v}={\displaystyle \sum _{j=1}^3}{a}_j{\hat{a}}_j}$ and wish to change it to ${\displaystyle \hat{v}={\displaystyle \sum _{j=1}^3}{b}_j{\hat{b}}_j}$. We know each basis set, and their relationship to each other. We are trying to find the coefficients, (the ${\displaystyle b_j}$) that go with the new basis set.

• Working from the ${\displaystyle \hat{a}}$ basis set:

${\displaystyle \hat{v}\cdot {\hat{b}}_m={\displaystyle \sum _{j=1}^3}{v}_j{\hat{a}}_j\cdot {\hat{b}}_m={\displaystyle \sum _{j=1}^3}{v}_j\underset{projof{\hat{a}}_{j}on{\hat{b}}_m}{\underbrace{({\hat{a}}_j\cdot {\hat{b}}_m)}}}$

• Working from the ${\displaystyle \hat{b}}$ basis set:

${\displaystyle \hat{v}\cdot {\hat{b}}_m={\displaystyle \sum _{j=1}^3}{b}_j{\hat{b}}_j\cdot {\hat{b}}_m={\displaystyle \sum _{j=1}^3}{b}_j\underset{projof{\hat{b}}_{j}on{\hat{b}}_m}{\underbrace{({\hat{b}}_j\cdot {\hat{b}}_m)}}={\displaystyle \sum _{j=1}^3}{b}_j{k}_m\delta mj=k_m{\displaystyle \sum _{j=1}^3}{b}_j\delta mj=b_m{k}_m{\displaystyle \sum _{j=1}^3}=b_m{k}_m}$

• Now taking the ${\displaystyle \hat{v}\cdot {\hat{b}}_m}$ that was derived from both basis sets and equating them:

${\displaystyle b_m{k}_m={\displaystyle \sum _{j=1}^3}{v}_j{\hat{a}}_j\cdot {\hat{b}}_m⟹b_m=\frac{1}{k_m}{\displaystyle \sum _{j=1}^3}{v}_j({\hat{a}}_j\cdot {\hat{b}}_m)}$

Defining ${\displaystyle k_m}$

Taking ${\displaystyle k_m}$ from the previous section:

${\displaystyle {\hat{b}}_j\cdot {\hat{b}}_m=k_m\delta mj⟹{\hat{b}}_m\cdot {\hat{b}}_m=k_m⟹{\left|{\hat{b}}_m\right|}^2=k_m}$

Thus ${\displaystyle k_m}$ is the length of ${\displaystyle {\hat{b}}_m}$ squared

Questions

• What does the ${\displaystyle {\hat{b}}_m}$ represent, say compared to ${\displaystyle {\hat{b}}_j}$?
  • ${\displaystyle {\hat{b}}_m}$ is a unit vector in the direction we're interested in finding the new coefficient for the new basis set -- rewrite this
  • ${\displaystyle {\hat{b}}_j}$ is a unit vector for one direction in our new basis set
• When you do the dot product of say ${\displaystyle \overrightarrow{A}\cdot \overrightarrow{B}}$, is it always the projection of ${\displaystyle \overrightarrow{A}}$ onto ${\displaystyle \overrightarrow{B}}$ and not the opposite way around?
  • ${\displaystyle \overrightarrow{A}\cdot \overrightarrow{B}=\left|\overrightarrow{A}\right|\left|\overrightarrow{B}\right|\cos \theta }$
• Then is the picture assuming something is a unit vector?
  • You will have to choose whether you're interested in projecting A onto B or B onto A. The lengths will be the same, but the direction will be different.
• Why did you decide to make it ${\displaystyle k_m}$ instead of ${\displaystyle k_j}$?
  • Completely arbitrary, the end result is the same either way
• ${\displaystyle \hat{x}}$ is a unit vector and ${\displaystyle \overrightarrow{x}}$ is a vector