訊號與系統/傅立葉轉換的範例

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試求y(t)=${\displaystyle e^{-\alpha t}u(t)}$ ，${\displaystyle \alpha >0}$之傅立葉轉換，並繪出y(t)的頻譜。

                                         © G. E. Carlson, Signal and Linear System Analysis, 2nd ed., John Wiley & Sons, 1998.

【解】 ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}y(t)e^{-j2\pi ft}dt}$
       =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}y(t)e^{-\alpha t}u(t)e^{-j2\pi ft}dt}$
      =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}y(t)e^{-(\alpha +j2\pi f)t}dt}$
      =${\displaystyle \frac{-1}{\alpha +j2\pi f}{e}^{-(\alpha +j2\pi f)t}dt{\displaystyle \underset{0}{\overset{\mathrm{\infty }}{\mid }}}}$

      =${\displaystyle \frac{1}{\alpha +j2\pi f}}$

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${\displaystyle \mid Y(f)\mid =\mid \frac{1}{\alpha +j2\pi f}\mid =\frac{1}{\sqrt{{\alpha }^2+4{\pi }^2{f}^2}}}$

${\displaystyle \mathrm{\angle }Y(f)=\mathrm{\angle }(\frac{1}{\alpha +j2\pi f})=\mathrm{\angle }1-\mathrm{\angle }(\alpha +j2\pi f)}$

${\displaystyle =0-{\tan }^{-1}(\frac{2\pi f}{\alpha })}$

${\displaystyle =-{\tan }^{-}1(\frac{2\pi f}{\alpha })}$

                                 © G. E. Carlson, Signal and Linear System Analysis, 2nd ed., John Wiley & Sons, 1998.

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試求${\displaystyle {\chi }_2(t)=e^{-a\mid t\mid }}$，a>0之傅立葉轉換

【解】 ${\displaystyle {\chi }_2(f)}$=${\displaystyle \mathrm{\Im }}${${\displaystyle {\chi }_2(t)}$} =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}y(t){\chi }_2(t)e^{-j2\pi ft}dt}$

 = ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{0}{\int }}}{e}^{at}{e}^{-j2\pi ft}dt}$+${\displaystyle {\displaystyle \underset{0}{\overset{\mathrm{\infty }}{\int }}}{e}^{-at}{e}^{-j2\pi ft}dt}$
 = ${\displaystyle \frac{1}{a-j2\pi f}}$ +${\displaystyle \frac{1}{a+j2\pi f}}$
 =${\displaystyle \frac{2a}{a^2+(2\pi f{)}^2}}$

 假設a=2 

                                         ©余兆棠、李志鵬，信號與系統， 滄海書局，2007。
    

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試求${\displaystyle \chi (t)=rect\frac{t}{\tau }}$的傅立葉轉換。

【解】

                                © B. P. Lathi, Signal Processing and Linear Systems, Berkeley-Cambridge Press, 1998.

           (1)用頻率f：${\displaystyle \mathrm{X}(f)}$=${\displaystyle \mathrm{\Im }}${${\displaystyle {\chi }_2(t)}$} =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\chi (t)e^{-j2\pi ft}dt}$

=${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}rect\frac{t}{\tau }{e}^{-j2\pi ft}dt}$ =${\displaystyle {\displaystyle \underset{\frac{-\tau }{2}}{\overset{\frac{\tau }{2}}{\int }}}1e^{-j2\pi ft}dt}$ =${\displaystyle \frac{1}{-j2\pi f}{e}^{-j2\pi ft}{\displaystyle \underset{\frac{\tau }{2}}{\overset{\frac{\tau }{2}}{\mid }}}}$

=${\displaystyle \frac{1}{-j2\pi f}{e}^{-j2\pi ft}}$(${\displaystyle e^{j\pi f\tau }-e^{j\pi f\tau }}$)

=${\displaystyle \tau \frac{\sin (\pi f\tau )}{\pi f\tau }}$=${\displaystyle \tau sinc(\tau f)}$

            sinc(x)=${\displaystyle \frac{\sin (\pi \chi )}{\pi \chi }}$

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(2)用角頻率${\displaystyle \omega }$： ${\displaystyle {\mathrm{X}}_{\omega }(\omega )={\displaystyle \underset{-\mathrm{\infty }}{\overset{infty}{\int }}}{e}^{-j\omega t}dt}$

${\displaystyle ={\displaystyle \underset{-\mathrm{\infty }}{\overset{infty}{\int }}}rect(\frac{t}{\tau })e^{-j\omega t}dt}$

=${\displaystyle {\displaystyle \underset{-\frac{t}{\tau }}{\overset{\frac{t}{\tau }}{\int }}}1e^{-j\omega t}dt}$

=${\displaystyle \frac{1}{-j\omega }}$(${\displaystyle e^{-j\omega \frac{t}{\tau }}-e^{-j\omega \frac{t}{\tau }}}$)

=${\displaystyle \tau \frac{\sin \frac{\omega \tau }{2}}{\frac{\omega \tau }{2}}}$

=${\displaystyle \tau sa(\frac{\omega \tau }{2})}$

           ${\displaystyle sa(y)=\frac{\sin (y)}{y}}$

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定義：${\displaystyle sinc(x)=\frac{\sin (\pi x)}{\pi x}}$

    ${\displaystyle Sa(y)=\frac{\sin (y)}{y}}$

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                            © B. P. Lathi, Signal Processing and Linear Systems, Berkeley-Cambridge Press, 1998.

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試求${\displaystyle x_b(t)=rect(t+\frac{1}{2})-rect(t-\frac{1}{2})}$的傅立葉轉換

【解】${\displaystyle x_b(f)={\displaystyle \underset{-1}{\overset{0}{\int }}}{e}^{-j2\pi ft}dt-{\displaystyle \underset{0}{\overset{1}{\int }}}{e}^{-j2\pi ft}dt}$

=${\displaystyle -\frac{1}{j2\pi f}}$[${\displaystyle e^{-j2\pi ft}{\mid }_{-}{1}^0-e^{-j2\pi ft}{\displaystyle \underset{0}{\overset{1}{\mid }}}}$]

=${\displaystyle -\frac{1}{j2\pi f}}$(${\displaystyle 1-e^{j2\pi ft}-e^{-j2\pi ft}+1}$)

                                          ${\displaystyle e^{j2\pi ft}+e^{-j2\pi ft}}$

                                                =${\displaystyle 2\cos 2\pi f}$

=${\displaystyle -\frac{1}{j2\pi f}}$[${\displaystyle 2-2\cos (2\pi f)}$]

=${\displaystyle \frac{j}{\pi f}(1-\cos 2\pi f)}$

                                        ${\displaystyle 1-\cos 2\pi f}$

                                         =${\displaystyle 2{\sin }^2(\pi f)}$

=${\displaystyle j2\frac{{\sin }^2\pi f}{\pi f}}$

=${\displaystyle j2\pi fsin{c}^2(f)}$

                               © Rodger E. Ziemer, William H. Tranter, D. Ronald Fannin, Signals & Systems:  Continuous and Discrete, 4th ed., Prentice Hall International, 1998.

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                                     © Rodger E. Ziemer, William H. Tranter, D. Ronald Fannin, Signals & Systems:  Continuous and Discrete, 4th ed., Prentice Hall International, 1998.

說明：${\displaystyle {\mathrm{X}}_b(f)=j2\pi fsin{c}^2(f)}$

    ${\displaystyle \Rightarrow {\mathrm{X}}_b\omega (\omega )=j\omega (\frac{\sin \pi f}{\pi f}{)}^2}$
                                =${\displaystyle j\omega }$[${\displaystyle \frac{\sin (\frac{\omega }{2})}{\frac{\omega }{2}}}$]$2^{}$                                 
                                =${\displaystyle j\omega s{a}^2\frac{\omega }{2}}$

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試求直流訊號${\displaystyle \chi (t)=1}$,${\displaystyle -\mathrm{\infty }<t<\mathrm{\infty }}$的傅立葉轉換

【解】${\displaystyle \mathrm{X}(f)}$=${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}1e^{-j2\pi ft}dt}$

    =${\displaystyle \underset{T\to \mathrm{\infty }}{\lim }{\displaystyle \underset{-\frac{t}{2}}{\overset{\frac{t}{2}}{\int }}}1e^{-j2\pi ft}dt}$

    =${\displaystyle \underset{T\to \mathrm{\infty }}{\lim }\frac{1}{-j2\pi f}{e}^{-j2\pi ft}dt{\mid }_{-}{\frac{t}{2}}^{\frac{t}{2}}}$

   =${\displaystyle \underset{T\to \mathrm{\infty }}{\lim }\frac{1}{-j2\pi f}}$[${\displaystyle e^{-j2\pi ft}-e^{j2\pi ft}}$]

=${\displaystyle \frac{1}{\pi f}\underset{T\to \mathrm{\infty }}{\lim }\sin (\pi fT)}$

因為${\displaystyle \underset{T\to \mathrm{\infty }}{\lim }\sin (\pi fT)}$不存在，故${\displaystyle \chi (t)=1}$ 的傅立葉轉換不收斂。 由此範例可知，直流訊號${\displaystyle \chi (t)=1}$的傅立葉轉換不存在。很多常用的訊號 模型 如${\displaystyle \cos ,\sin ,\delta (t),u(t)}$等其傅立葉轉換均不存在! 下節將介紹廣義的傅立葉轉換(generalized Fourier transform)來解決此一問題

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為了讓一些常用的訊號模型如${\displaystyle \sin ,\cos }$複指數訊號${\displaystyle (e^{-j2\pi ft}),\delta (t),u(t)}$可作傅立葉轉換，將其擴展為包含極限的定義，也就是廣義的傅立葉轉換。

例如：

     (1)${\displaystyle \mathrm{\Im }}$ {${\displaystyle \cos 2\pi f_{0}t}$} =${\displaystyle \underset{\alpha \to 0}{\lim }\mathrm{\Im }}$  {${\displaystyle exp(-\alpha \mid t\mid )\cos 2\pi f_{0}t}$} ,${\displaystyle \alpha >0}$

     =${\displaystyle \frac{1}{2}}$ {${\displaystyle \delta (f-f_0)+\delta (f+f_0)}$}

    (2)${\displaystyle \mathrm{\Im }}$ {${\displaystyle \delta (t)}$}= ${\displaystyle \underset{ϵ\to 0}{\lim }}$${\displaystyle \mathrm{\Im }}$ {${\displaystyle {\delta }_{ϵ}(t)=rect(t/2ϵ)/(2ϵ)}$} =1
 
    (3)${\displaystyle \mathrm{\Im }}$ {A} =${\displaystyle \underset{T\to \mathrm{\infty }}{\lim }\mathrm{\Im }}$ {${\displaystyle Arect(t/T)}$}=A${\displaystyle \delta (f)}$

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試求函數${\displaystyle \delta (t)}$的傅立葉轉換。

【解】${\displaystyle \mathrm{\Im }}$ {${\displaystyle \delta (t)}$ }= ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (t)e^{-j2\pi ft}dt}$

                                 ${\displaystyle \chi (t)\delta (t)=\chi (0)\delta (t)}$

   = ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (t)e^{-j2\pi f0}dt}$
   =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (t),dt}$=1

所以：${\displaystyle \delta (t)\leftrightarrow 1}$

                                        ©余兆棠、李志鵬，信號與系統， 滄海書局，2007。

由上圖知，單位脈衝訊號${\displaystyle \delta (t)}$包含所有頻率且不同頻率之振幅均相等。

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試求${\displaystyle \delta (f)}$的傅立葉逆轉換

【解】${\displaystyle {\mathrm{\Im }}^{-1}}$ {${\displaystyle \delta (f)}$ }= ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (f)e^{j2\pi ft}df}$=${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (f)e^{j2\pi 0t}df}$=${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (f)df=1}$

所以：${\displaystyle 1\leftrightarrow \delta (f)}$ 物理意義：大小為1的常數訊號為一直流訊號，故其頻譜只在f=0處存在

                    一單位脈衝函數
                           
                                            ©余兆棠、李志鵬，信號與系統， 滄海書局，2007。

注意：根據上述關係可知。${\displaystyle Im}$ {${\displaystyle 1}$}=${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}{e}^{-j\pi ft}dt=\delta (f)}$ 積分公式：${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}{e}^{-j\pi ft}dt=\delta (f)}$

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試求${\displaystyle 2\pi \delta (\omega )}$的傅立葉逆轉換。

【解】${\displaystyle {\mathrm{\Im }}^{-1}}$ {${\displaystyle 2\pi \delta (\omega )}$}=${\displaystyle \frac{1}{2\pi }{\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}2\pi \delta (\omega )e^{j\omega t}d\omega ={\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (\omega )e^{j0t}d\omega ={\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (\omega )d\omega =1}$ 所以：${\displaystyle 1\leftrightarrow 2\pi \delta (\omega )}$

 注意 ：根據上述關係可知${\displaystyle Im}$ {1} =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}1e^{-j\omega t}dt=2\pi \delta (\omega )}$

積分公式：${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}{e}^{-j\omega t}dt=\delta (\omega )}$

                                     © B. P. Lathi, Signal Processing and Linear Systems, Berkeley-Cambridge Press, 1998.

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       ${\displaystyle \delta (k\chi )=\frac{1}{\left|k\right|}\delta (\chi )}$    ${\displaystyle k\ne 0}$

【證明】 (1)假設k>0 ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (k\chi )dx}$

                                                 令y=${\displaystyle k\chi }$
                                                  dy=${\displaystyle kd\chi }$

                          =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (y)(\frac{y}{k})}$  

                          =${\displaystyle \frac{1}{k}{\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (y)dy}$

                          =${\displaystyle \frac{1}{k}{\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (x)dx}$

                          =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\frac{1}{k}\delta (x)dx}$

                        故${\displaystyle \delta (k\chi )=\frac{1}{k}\delta (\chi )}$   k>0

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(2)假設k<0         ${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (k\chi )dx}$
                                           令y=${\displaystyle k\chi }$
                                            dy=${\displaystyle kd\chi }$
                   
                 因為k<0
                     
                          =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (y)\frac{dy}{k}}$  

                          =-${\displaystyle \frac{1}{k}{\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (y)dy}$

                          =-${\displaystyle \frac{1}{k}{\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\delta (x)dx}$

                          =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}-\frac{1}{k}\delta (x)dx}$

                        故${\displaystyle \delta (k\chi )=-\frac{1}{k}\delta (\chi )}$   k<0

結論： (1)${\displaystyle \delta (k\chi )=\frac{1}{\left|k\right|}\delta (\chi )}$ ${\displaystyle k\ne 0}$

       (2)k=-1

${\displaystyle \delta (-\chi )=\delta (\chi )}$即${\displaystyle \delta (\chi )}$為一偶函數。

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試求${\displaystyle \chi (t)=e^{j2\pi f_{0}t}}$之傅立葉轉換，其中${\displaystyle f_0}$為一固定頻率。

【解】${\displaystyle \mathrm{X}(f)={\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\chi (t)e^{-j2\pi ft}dt}$

                 =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\chi (t)e^{j2\pi f_{0}t}{e}^{-j2\pi ft}dt}$
   
                 =${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\chi (t)e^{-j2\pi (f-f_0)t}dt}$
                                           根據積分公式${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}\chi (t)e^{-j2\pi ft}dt=\delta (f)}$

                 =${\displaystyle \delta (f-f_0)}$ 

${\displaystyle {\mathrm{X}}_{\omega }(\omega )=\mathrm{X}(\frac{\omega }{2\pi })=\delta (\frac{\omega -{\omega }_0}{2\pi })}$

     ${\displaystyle \omega =2\pi f}$
      ${\displaystyle {\omega }_0=2\pi f_0}$

                    =${\displaystyle 2\pi \delta (\omega -{\omega }_0)}$

由${\displaystyle \mathrm{X}(f)}$(或${\displaystyle {\mathrm{X}}_{\omega }(\omega )}$ )可知，${\displaystyle \chi (t)=e^{j2\pi f_{0}t}}$為僅具有單一頻率${\displaystyle f_0}$的訊號

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試求符號函數(sign function)y(t)=${\displaystyle \mathrm{sgn}(t)}$的傅立葉轉換。

【解】 符號函數

                   ${\displaystyle sgn(t)=}$1  t>0 ;  -1  t<0

${\displaystyle \Rightarrow \mathrm{sgn}(t)=}$ [${\displaystyle \underset{a\to 0}{\lim }{e}^{-at}u(t)-e^{-a(-t)}u(-t)}$] a>0

Y(f)=${\displaystyle \mathrm{\Im }}$ {${\displaystyle sgn(t)}$}= [${\displaystyle \underset{a\to 0}{\lim }{e}^{-at}u(t)-e^{-a(-t)}u(-t)}$]

                                                 © Charls L. Phillips, John M. Parr, Eve A. Riskin, Signals, Systems, and Transforms, 3rd ed., Pearson Education, 2003.

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${\displaystyle \mathrm{\Im }}$ [e^{-at}u(t)-e^{-a(-t)}u(-t)]

=${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}}$ { ${\displaystyle e^{-at}u(t)-e^{-a(-t)}u(t)}$ } ${\displaystyle e^{-j2\pi ft}dt}$

=${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}{e}^{-at}u(t)e^{-j2\pi ft}dt}$-${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{\mathrm{\infty }}{\int }}}{e}^{-a(-t)}u(-t)e^{-j2\pi ft}dt}$

=${\displaystyle {\displaystyle \underset{0}{\overset{\mathrm{\infty }}{\int }}}{e}^{-at}{e}^{-j2\pi ft}dt}$-${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{0}{\int }}}{e}^{-a(-t)}u(t)e^{-j2\pi ft}dt}$

=${\displaystyle {\displaystyle \underset{0}{\overset{\mathrm{\infty }}{\int }}}{e}^{-(a+j2\pi f)t}dt}$-${\displaystyle {\displaystyle \underset{-\mathrm{\infty }}{\overset{0}{\int }}}{e}^{-(-a+j2\pi f)t}dt}$

=${\displaystyle \frac{1}{a+j2\pi f}+\frac{1}{-a+j2\pi f}=\frac{j4\pi f}{-[a^2+4{\pi }^2{f}^2]}}$

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Y(f)=${\displaystyle \mathrm{\Im }}$ { sgn(t) }=${\displaystyle \underset{a\to 0}{\lim }\frac{j4\pi f}{-(a^2+4{\pi }^2{f}^2)}}$=${\displaystyle \frac{j4\pi f}{-4{\pi }^2{f}^2}}$=${\displaystyle \frac{1}{j\pi f}}$

所以sgn(t)${\displaystyle \leftrightarrow \frac{1}{j\pi f}(=\frac{2}{j\omega },\omega =2\pi f)}$

                                            © G. E. Carlson, Signal and Linear System Analysis, 2nd ed., John Wiley & Sons, 1998.

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