Exercise 2.4Z: Triangular Function

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Preset triangular signal

We consider the signal  ${x(t)}$  with  $T_0$  according to the adjacent sketch, where the second signal parameter  $T_1 ≤ T_0/2$  is to apply. This signal is dimensionless and limited to  $1$ .

In subtask  (3)  the Fourier series representation  $x_3(t)$ based on only  $N = 3$  coefficients is used.

The difference between the truncated Fourier series and the actual signal is:

$$\varepsilon_3(t)=x_3(t)-x(t).$$




Hints:

  • This exercise belongs to the chapter  Fourier Series.
  • You can find a compact summary of the topic in the two (German language) learning videos
Zur Berechnung der Fourierkoeffizienten   ⇒   "To calculate the Fourier coefficients"
Eigenschaften der Fourierreihendarstellung   ⇒   "Properties of the Fourier series representation"
  • To solve the problem, you can use the following definite integral   (let $n$ be an integer$)$:
$$\int u \cdot \cos(au)\,{\rm d}u = \frac{\cos(au)}{a^2} + \frac{u \cdot \sin(au)}{a}.$$


Questions

1

Which of the following statements are true for all permissible  $T_0$  and  $T_1$ ?

The DC coefficient is  $A_0 = T_1/T_0$.
All sine coefficients  $B_n$  are zero.
All cosine coefficients  $A_n$  with even   $n$  are zero.

2

Calculate the Fourier coefficients  $A_n$  in general form.  What are the values for  $A_1$,  $A_2$  and  $A_3$  with  $T_1/T_0 = 0.25$?

$A_1\ = \ $

$A_2\ = \ $

$A_3\ = \ $

3

Write the function  ${x(t)}$  as a Fourier series and break it off after  $N = 3$  coefficients.  How large is the error   $\varepsilon_3(t = 0)$?

$\varepsilon_3(t = 0)\ = \ $


Solution

(1)  Proposed solutions 1 and 2 are correct:

  • The DC coefficient is actually  $T_1/T_0$.  Since  ${x(t)}$  is an even function, all sine coefficients  $B_n = 0$.
  • The even cosine coefficients  $A_{2n}$  only disappear if   $T_1 = T_0/2$. 
  • In this case the condition  ${x(t)} = 2A_0 - x(t - T_0/2)$  is fulfilled  $($with $A_0 = 0.5)$.


(2)  Taking advantage of the symmetry property  ${x(-t)} = {x(t)}$  one obtains:

$$A_n=2 \cdot \frac{2}{T_0}\cdot \hspace{-0.1cm}\int_0^{T_1}(1-\frac{t}{T_1})\cos(2\pi n\frac{t}{T_0})\, {\rm d}t.$$
  • This leads to two partial integrals  $I_1$  and  $I_2$. The first is:
$$I_1=\frac{4}{T_0} \cdot \hspace{-0.1cm} \int_0^{T_1}\cos(2\pi n\frac{t}{T_0})\,{\rm d}t=\frac{2}{\pi n}\sin(2\pi n\frac{T_1}{T_0}).$$
  • For the second integral, with the integral on the statement side:
$$I_2=\frac{-4}{T_0\cdot T_1}\cdot \hspace{-0.1cm}\int_0^{T_1}t\cdot\cos(2\pi n\frac{t}{T_0})\,{\rm d}t=\frac{-4}{T_0\cdot T_1}\cdot \hspace{0.1cm}\left[\frac{T^2_0 \cdot \cos(2\pi nt/T_0)}{4\pi^2n^2}+\frac{T_0 \cdot t \cdot \sin(2\pi nt/T_0)}{2\pi n}\right]^{T_1}_0.$$
  • This last integral can be summarised as follows:
$$I_2=\frac{-\cos(2\pi nT_1/T_0)}{\pi^2 n^2T_1/T_0}+\frac{1}{\pi^2 n^2 T_1/T_0}-I_1.$$
  • From this follows with  $1 - \cos(2\alpha) = 2 \cdot \sin^2(\alpha)$:
$$A_n=I_1+I_2=\frac{1-\cos(2\pi nT_1/T_0)}{\pi^2 n^2 T_1/T_0}=\frac{2\sin^2 (\pi nT_1/T_0)}{\pi^2 n^2 T_1/T_0}.$$
  • For  $T_1/T_0 = 0.25$  one obtains:
$$A_n=\frac{8\sin^2 (\pi n/4)}{\pi^2 n^2}.$$
  • In particular:
$$A_1=\frac{8}{\pi^2}\sin^2(\pi/4)=\frac{4}{\pi^2}\hspace{0.15cm}\underline{\approx 0.405},\hspace{0.5cm} A_2=\frac{2}{\pi^2}\sin^2(\pi/2)=\frac{2}{\pi^2}\hspace{0.15cm}\underline{\approx 0.202},\hspace{0.5cm} A_3=\frac{8}{9\pi^2}\sin^2(3\pi/4)=\frac{4}{9\pi^2}\hspace{0.15cm}\underline{\approx 0.045}.$$


(3)  It holds:

$$x_3(t)=\frac{1}{4}+\frac{4}{\pi^2}\left[\cos(\omega_0 t)+\frac{1}{2}\cos(2\omega_0 t)+\frac{1}{9}\cos(3\omega_0 t)\right].$$
  • At time  $t = 0$  this gives:
$$x_3(t=0)=\frac{1}{4}+\frac{4}{\pi^2}\cdot \frac{29}{18}\approx 0.9 \hspace{0.5cm}\Rightarrow \hspace{0.5cm}\varepsilon_3(t=0)=x_3(t=0)-x(t=0)\hspace{0.15cm}\underline{=-0.1}.$$
  • For the time  $t = 0$  and for multiples of the period  $T_0$  $($peak of the triangular functions in each case$)$  the deviation is greatest in terms of magnitude.