Take the 2-minute tour ×
Mathematics Stack Exchange is a question and answer site for people studying math at any level and professionals in related fields. It's 100% free, no registration required.

How I am supposed to transform the following function in order to apply the laplace transform.

$f(t) = t[u(t)-u(t-1)]+2t[u(t-1) - u(t-2)]$

I know that it has to be like this

$L\{f(t-t_0)u(t-t_0)\} = e^{-st_0}F(s), F(s) = L\{f(t)\}$

share|improve this question
add comment

2 Answers

up vote 0 down vote accepted

You're using the formula $${\cal L}\{f(t-t_0)\,{\cal U}(t-t_0)\} = e^{-t_0s}F(s).$$ where, $${\cal U}(t-t_0)=\cases{0,& $0 \le t \lt t_0$ \cr 1,& $t\ge t_0$ } .$$


As an example of using the above formula, let's consider the transform of $ t \, {\cal U}(t-1)$. Note that this function is not in a form where the formula is directly applicable. However, we can first write $$t \,\,{\cal U}(t-1) = \bigl((t+1)-1\bigr)\,{\cal U}(t-1).$$

Then, we can apply the formula with $f(t)=t+1$, $t_0=1$, and $$F(s)={\cal L}\{ t+1\}= {\cal L}\{ t \}+{\cal L}\{ 1\} ={1\over s^2}+{1\over s^{\vphantom2}}$$ to obtain $$ {\cal L}\bigl\{ t\, {\cal U}(t-1)\bigr\}={\cal L}\bigl\{ \bigl((t+1)-1\bigr)\, {\cal U}(t-1) \bigr\}=e^{-1s}F(s)=e^{- s} \Bigl({\textstyle{1\over s^2}+{1\over s^{\vphantom2} }}\Bigr). $$


The above "trick" can be generalized to produce the formula: $$ {\cal L}\{f(t )\,{\cal U}(t-t_0)\} = e^{-t_0s}{\cal L}\bigl\{f(t+t_0) \bigr\}. $$

A couple of points to be made:

  • Note what the above formula says. The function ${\cal U} (t-t_0)$ essentially "switches on" the function $f$ at $t_0$, that is $f(t )\,{\cal U}(t-t_0)$ is $0$ for $0\le t< t_0$ and $f(t)$ otherwise. To find the Laplace transform of one of these "switched on at $t_0$" functions, you take the Laplace transform of $f(t+t_0)$ and multiply by $e^{-st_0}$.
  • By definition, we take Laplace transforms of functions that are defined for $t\ge 0$; thus for any such function $f$, we have $$ {\cal L}\{ f(t)\, {\cal U}(t)\}= {\cal L}\{ f(t) \}. $$




Now, let's consider your problem, using the formula at the beginning of this post (of course, you could use the shorcut formula derived afterwards).

Your function, after expansion, becomes: $$\eqalign{ t\,{\cal U}(t)-t\,{\cal U}(t-1)+2t\,{\cal U}(t-1) -2t\,{\cal U}(t-2)&= \color{maroon}{t\,{\cal U}(t)} + \color{darkgreen}{t\,{\cal U}(t-1)} - \color{darkblue}{2t\,{\cal U}(t-2)}\cr } $$ The Laplace transform is linear; so, we can compute the Laplace transforms of each colored term above ind the invoke: $$\tag{1}{\cal L}\bigl\{ \color{maroon}{t\,{\cal U}(t)} + \color{darkgreen}{t\,{\cal U}(t-1)} - \color{darkblue}{2t\,{\cal U}(t-2)}\bigr\} = {\cal L}\bigl\{ \color{maroon}{t\,{\cal U}(t)}\bigr\} + {\cal L}\bigl\{ \color{darkgreen}{t\,{\cal U}(t-1)}\bigr\} -2{\cal L}\bigl\{ \color{darkblue}{ t\,{\cal U}(t-2)}\bigr\} $$ We have $$\tag{2} \color{maroon}{ {\cal L}\bigl\{ t\, {\cal U}(t ) \bigr\}= {\cal L}(t)= {\textstyle{1\over s^2} } } . $$

$$\tag{3}\color{darkgreen}{ {\cal L}\bigl\{ t\, {\cal U}(t-1)\bigr\}={\cal L}\bigl\{ \bigl((t+1)-1\bigr)\, {\cal U}(t-1) \bigr\}=e^{-1s}{\cal L}\{t+1\}=e^{- s} \Bigl({\textstyle{1\over s^2}+{1\over s^{\vphantom2} }}\Bigr)}, $$ and $$\tag{4}\color{darkblue}{ {\cal L}\bigl\{ t\, {\cal U}(t-2)\bigr\}= {\cal L}\bigl\{ \bigl((t+2)-2\bigr)\, {\cal U}(t-2) \bigr\}= e^{-2s} {\cal L}\{t+2\}= e^{-2 s} \Bigl({\textstyle{1\over s^2}+{2\over s^{\vphantom2} }}\Bigr)}, $$

So, substituting the results of $(2)$, $(3)$, and $(4)$ into $(1)$: $$\eqalign{ {\cal L}\{ t\,{\cal U}(t) + t\,{\cal U}(t-1) -2t\,{\cal U}(t-2)\} &={\textstyle{1\over s^2} }+e^{- s} \Bigl({\textstyle{1\over s^2}+{1\over s^{\vphantom2} }}\Bigr) -2e^{-2 s} \Bigl({\textstyle{1\over s^2}+{2\over s^{\vphantom2} }}\Bigr)\cr } $$



A final remark:

It would be simpler for this problem to just use the definition of the Laplace transform to find the transform of your function, as Unreasonable Sin does in his answer. Of course, the method used here proves to be the shorter one when dealing with more complicated functions.

share|improve this answer
    
How did you find $F(s)={1\over s^2}+{1\over s}$? –  tamakisnen Jan 31 '12 at 21:30
    
@tamakisnen${\cal L}\{ t+1 \}={\cal L}\{ t \}+{\cal L}\{ 1 \}={1\over s^2}+{1\over s^\phantom{2}}$. –  David Mitra Jan 31 '12 at 21:36
    
That's ok. The problem is that the book comes up with $1/s^2 - 2e^{-s}/s^2 + e^{-2s}/s^2$ and I can't reproduce it. –  tamakisnen Jan 31 '12 at 21:43
add comment

Since $u(t) = 1$ if $t \ge 0$ and $0$ otherwise, then $u(t) - u(t - 1) = 1$ only on the interval $[0, 1]$, and $u(t - 1) - u(t - 2) = 1$ only on the interval $[1, 2]$. You can then take the laplace transform of $t$ and $2t$ using these intervals in the integral:

$F(s) = \int_{0}^{1}te^{-st}dt + \int_{1}^22te^{-st}dt$

Since $\int te^{-st}\;dt = \frac{e^{-st}(st + 1)}{s^2}$, the solution comes out to be

$F(s) = \frac{e^{-s} - 4e^{-2s}}{s} + \frac{e^{-s} + 1 - 2e^{-2s}}{s^2}$

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.