10/3,6 - The Game: Difference between revisions

The Game

The idea behind the game is to use linearity (superposition and proportionality) and time invariance to find an output for a given input. An initial input and output are given.

Input	LTI System	Output	Reason
${\displaystyle \delta (t)\,\!}$	${\displaystyle \Longrightarrow }$	${\displaystyle h(t)\,\!}$	Given
${\displaystyle \delta (t-\lambda )\,\!}$	${\displaystyle \Longrightarrow }$	${\displaystyle h(t-\lambda )\,\!}$	Time Invarience
${\displaystyle x(\lambda )\delta (t-\lambda )\,\!}$	${\displaystyle \Longrightarrow }$	${\displaystyle x(\lambda )h(t-\lambda )\,\!}$	Proportionality
${\displaystyle x(t)=\int _{-\infty }^{\infty }x(\lambda )\delta (t-\lambda )\,dx}$	${\displaystyle \Longrightarrow }$	${\displaystyle \underbrace {\int _{-\infty }^{\infty }x(\lambda )h(t-\lambda )\,dx} _{ConvolutionIntegral}}$	Superposition

With the derived equation, note that you can put in any ${\displaystyle x(t)\,\!}$ to find the given output. Just change your t for a lambda and plug n chug.

Example

Let ${\displaystyle x(t)=e^{j2\pi nt/T}=e^{j2\pi \omega _{n}t}}$

${\displaystyle \int _{-\infty }^{\infty }e^{j2\pi \omega _{n}\lambda }h(t-\lambda )\,d\lambda =-\int _{\infty }^{-\infty }e^{j2\pi \omega _{n}(t-u)}h(u)\,du=\left(\int _{-\infty }^{\infty }e^{-j2\pi \omega _{n}u}h(u)\,du\right)e^{j2\pi \omega _{n}t}}$

• Let ${\displaystyle t-\lambda =u\,\!}$ thus ${\displaystyle du=-d\lambda \,\!}$
• Why did the order of integration switch?