Difference between revisions of "Aufgaben:Exercise 5.3Z: Zero-Padding"

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We consider the DFT of a rectangular pulse  $x(t)$  of height  $A =1$  and duration  $T$.  Thus the spectral function  $X(f)$  has a  $\sin(f)/f$–shaped course.
 
We consider the DFT of a rectangular pulse  $x(t)$  of height  $A =1$  and duration  $T$.  Thus the spectral function  $X(f)$  has a  $\sin(f)/f$–shaped course.
  
For this special case the influence of the DFT parameter  $N$  is to be analysed, whereby the interpolation point distance in the time domain should always be  $T_{\rm A} = 0.01T$  or  $T_{\rm A} = 0.05T$.
+
For this special case the influence of the DFT parameter  $N$  is to be analyzed, whereby the interpolation point distance in the time domain should always be  $T_{\rm A} = 0.01T$  or  $T_{\rm A} = 0.05T$.
  
 
The resulting values for the "mean square error"  $\rm (MSE)$  of the grid values in the frequency domain are given opposite for different values of   $N$.  Here, we use instead of  $\rm MSE$  the designation  $\rm MQF$   ⇒   (German:  "Mittlerer Quadratischer Fehler"):  
 
The resulting values for the "mean square error"  $\rm (MSE)$  of the grid values in the frequency domain are given opposite for different values of   $N$.  Here, we use instead of  $\rm MSE$  the designation  $\rm MQF$   ⇒   (German:  "Mittlerer Quadratischer Fehler"):  
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<quiz display=simple>
 
<quiz display=simple>
{Which statements can be derived from the given MQF values&nbsp; $($valid for&nbsp; $T_{\rm A}/T = 0.01$&nbsp; and&nbsp; $N ≥ 128)$&nbsp; abgeleitet werden?
+
{Which statements can be derived from the given MQF values&nbsp; $($valid for&nbsp; $T_{\rm A}/T = 0.01$&nbsp; and&nbsp; $N ≥ 128)$?
 
|type="[]"}
 
|type="[]"}
+ The&nbsp; $\rm MQF$ value here is almost independent o&nbsp; $N$.
+
+ The&nbsp; $\rm MQF$ value here is almost independent of&nbsp; $N$.
- The&nbsp; $\rm MQF$ value is determined by the termination error.
+
- The&nbsp; $\rm MQF$ value is determined by the truncation error.
 
+ The&nbsp; $\rm MQF$ value is determined by the aliasing error.
 
+ The&nbsp; $\rm MQF$ value is determined by the aliasing error.
  
  
{Let&nbsp; $T_{\rm A}/T = 0.01$. What is the distance&nbsp; $f_{\rm A}$&nbsp; of adjacent samples in the frequency domain for&nbsp; $N = 128$&nbsp; and&nbsp; $N = 512$?
+
{Let&nbsp; $T_{\rm A}/T = 0.01$.&nbsp; What is the distance&nbsp; $f_{\rm A}$&nbsp; of adjacent samples in the frequency domain for&nbsp; $N = 128$&nbsp; and&nbsp; $N = 512$?
 
|type="{}"}
 
|type="{}"}
 
$N = 128$: &nbsp; &nbsp;  $f_{\rm A} \cdot T \ = \ $  { 0.781 3% }
 
$N = 128$: &nbsp; &nbsp;  $f_{\rm A} \cdot T \ = \ $  { 0.781 3% }
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- The product&nbsp; $\text{MQF} \cdot f_{\rm A}$&nbsp; should be as large as possible.
 
- The product&nbsp; $\text{MQF} \cdot f_{\rm A}$&nbsp; should be as large as possible.
  
{&nbsp; $N = 128$&nbsp; is now fixed. Which statements apply to the comparison of the DFT results with&nbsp; $T_{\rm A}/T = 0.01$&nbsp; und&nbsp; $T_{\rm A}/T = 0.05$ ?
+
{&nbsp; $N = 128$&nbsp; is now fixed.&nbsp; Which statements apply to the comparison of the DFT results with&nbsp; $T_{\rm A}/T = 0.01$&nbsp; und&nbsp; $T_{\rm A}/T = 0.05$ ?
 
|type="[]"}
 
|type="[]"}
+ Mit&nbsp; $T_{\rm A}/T = 0.05$&nbsp; you get a finer frequency resolution.
+
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; you get a finer frequency resolution.
- Mit&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the&nbsp; $\rm MQF$ value is smaller.
+
- With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the&nbsp; $\rm MQF$ value is smaller.
- Mit&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the termination error decreases.
+
- With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the truncation error decreases.
+ Mit&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the aliasing error increases.
+
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the aliasing error increases.
  
  
{Now&nbsp; $N = 64$.Which statements are true for the comparison of the DFT results with&nbsp; $T_{\rm A}/T = 0.01$&nbsp; und&nbsp; $T_{\rm A}/T = 0.05$&nbsp;?
+
{Now&nbsp; $N = 64$.&nbsp; Which statements are true for the comparison of the DFT results with&nbsp; $T_{\rm A}/T = 0.01$&nbsp; und&nbsp; $T_{\rm A}/T = 0.05$&nbsp;?
 
|type="[]"}
 
|type="[]"}
 
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; you get a finer frequency resolution.
 
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; you get a finer frequency resolution.
 
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the&nbsp; $\rm MQF$ value is smaller.
 
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the&nbsp; $\rm MQF$ value is smaller.
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the termination error decreases.
+
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the truncation error decreases.
 
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the aliasing error increases.
 
+ With&nbsp; $T_{\rm A}/T = 0.05$&nbsp; the influence of the aliasing error increases.
  
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{{ML-Kopf}}
 
{{ML-Kopf}}
 
'''(1)'''&nbsp;  <u>Proposed solutions 1 and 3</u> are correct:
 
'''(1)'''&nbsp;  <u>Proposed solutions 1 and 3</u> are correct:
*Already with&nbsp; $N = 128$&nbsp;,&nbsp; $T_{\rm P} = 1.28 \cdot T$, i.e. larger than the width of the rectangle.
+
*Already with&nbsp; $N = 128$,&nbsp; $T_{\rm P} = 1.28 \cdot T$, i.e. larger than the width of the rectangle.
*Thus the termination error plays no role at all here.  
+
*Thus the truncation error plays no role at all here.  
 
*The&nbsp; $\rm MQF$ value is determined solely by the aliasing error.  
 
*The&nbsp; $\rm MQF$ value is determined solely by the aliasing error.  
*The numerical values clearly confirm that&nbsp; $\rm MQF$&nbsp;  is (almost) independent of&nbsp; $N$&nbsp; ist.  
+
*The numerical values clearly confirm that&nbsp; $\rm MQF$&nbsp;  is (almost) independent of&nbsp; $N$.  
  
  
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'''(3)'''&nbsp;  The <u>first statement</u> is correct:
 
'''(3)'''&nbsp;  The <u>first statement</u> is correct:
*For&nbsp; $N = 128$&nbsp;, the product is&nbsp; $\text{MQF} \cdot f_{\rm A} \approx 4.7 \cdot 10^{-6}/T$. For&nbsp; $N = 512$&nbsp;, the product is smaller by a factor of about&nbsp; $4$&nbsp;.
+
*For&nbsp; $N = 128$&nbsp;, the product is&nbsp; $\text{MQF} \cdot f_{\rm A} \approx 4.7 \cdot 10^{-6}/T$.&nbsp; For&nbsp; $N = 512$&nbsp;, the product is smaller by a factor of about&nbsp; $4$&nbsp;.
*This means that&nbsp;„zero padding” does not achieve greater DFT accuracy, but a finer „resolution” of the frequency range.  
+
*This means that&nbsp;„zero padding” does not achieve greater DFT accuracy, but a finer "resolution" of the frequency range.  
 
*The product&nbsp; $\text{MQF} \cdot f_{\rm A}$&nbsp; takes this fact into account; it should always be as small as possible.  
 
*The product&nbsp; $\text{MQF} \cdot f_{\rm A}$&nbsp; takes this fact into account; it should always be as small as possible.  
  
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'''(4)'''&nbsp;  <u>Proposed solutions 1 and 4</u> are correct:
 
'''(4)'''&nbsp;  <u>Proposed solutions 1 and 4</u> are correct:
*Because of&nbsp; $T_{\rm A} \cdot f_{\rm A} \cdot N = 1$&nbsp;, a constant&nbsp; $N$&nbsp; always results in a smaller&nbsp; $f_{\rm A}$ value when $T_{\rm A}$ is increased.
+
*Because of&nbsp; $T_{\rm A} \cdot f_{\rm A} \cdot N = 1$&nbsp;, a constant&nbsp; $N$&nbsp; always results in a smaller&nbsp; $f_{\rm A}$&nbsp; value when&nbsp; $T_{\rm A}$&nbsp; is increased.
*From the table on the information page, one can see that the mean square error&nbsp; $\rm (MQF)$&nbsp; is significantly increased&nbsp; $($by a factor of about&nbsp; $400)$&nbsp;.  
+
*From the table on the information page, one can see that the mean square error&nbsp; $\rm (MQF)$&nbsp; is significantly increased&nbsp; $($by a factor of about&nbsp; $400)$.  
 
*The effect is due to the aliasing error, since the transition from&nbsp; $T_{\rm A}/T = 0.01$&nbsp; auf&nbsp; $T_{\rm A}/T = 0.05$&nbsp; reduces the frequency period by a factor of&nbsp; $5$&nbsp;.  
 
*The effect is due to the aliasing error, since the transition from&nbsp; $T_{\rm A}/T = 0.01$&nbsp; auf&nbsp; $T_{\rm A}/T = 0.05$&nbsp; reduces the frequency period by a factor of&nbsp; $5$&nbsp;.  
*The termination error, on the other hand, continues to play no role with the square pulse as long as&nbsp; $T_{\rm P} = N \cdot T_{\rm A}$&nbsp; is greater than the pulse duration&nbsp; $T$.  
+
*The truncation error, on the other hand, continues to play no role with the rectangular pulse as long as&nbsp; $T_{\rm P} = N \cdot T_{\rm A}$&nbsp; is greater than the pulse duration&nbsp; $T$.  
  
  
  
 
'''(5)'''&nbsp;  <u>All statements are true</u>:
 
'''(5)'''&nbsp;  <u>All statements are true</u>:
*With the parameter values&nbsp; $N = 64$&nbsp; and&nbsp; $T_{\rm A}/T = 0.01$&nbsp;, an extremely large termination error occurs.
+
*With the parameter values&nbsp; $N = 64$&nbsp; and&nbsp; $T_{\rm A}/T = 0.01$&nbsp;, an extremely large truncation error occurs.
*All time coefficients are&nbsp; $1$, so the DFT incorrectly interprets a DC signal instead of the square wave function.
+
*All time coefficients are&nbsp; $1$, so the DFT incorrectly interprets a DC signal instead of the rectangular function.
 
{{ML-Fuß}}
 
{{ML-Fuß}}
  

Latest revision as of 12:47, 22 September 2021

$\rm MQF$ values as a function
of  $T_{\rm A} /T$  and  $N$

We consider the DFT of a rectangular pulse  $x(t)$  of height  $A =1$  and duration  $T$.  Thus the spectral function  $X(f)$  has a  $\sin(f)/f$–shaped course.

For this special case the influence of the DFT parameter  $N$  is to be analyzed, whereby the interpolation point distance in the time domain should always be  $T_{\rm A} = 0.01T$  or  $T_{\rm A} = 0.05T$.

The resulting values for the "mean square error"  $\rm (MSE)$  of the grid values in the frequency domain are given opposite for different values of   $N$.  Here, we use instead of  $\rm MSE$  the designation  $\rm MQF$   ⇒   (German:  "Mittlerer Quadratischer Fehler"):

$${\rm MQF} = \frac{1}{N}\cdot \sum_{\mu = 0 }^{N-1} \left|X(\mu \cdot f_{\rm A})-\frac{D(\mu)}{f_{\rm A}}\right|^2 \hspace{0.05cm}.$$

Thus, for  $T_{\rm A}/T = 0.01$ ,  $101$  of the DFT coefficients  $d(ν)$  are always different from zero.

  • Of these,   $99$  have the value  $1$  and the two marginal coefficients are each equal to  $0.5$.
  • If  $N$  is increased, the DFT coefficient field is filled with zeros.
  • This is then referred to as  $\text{zero padding}$.




Hints:




Questions

1

Which statements can be derived from the given MQF values  $($valid for  $T_{\rm A}/T = 0.01$  and  $N ≥ 128)$?

The  $\rm MQF$ value here is almost independent of  $N$.
The  $\rm MQF$ value is determined by the truncation error.
The  $\rm MQF$ value is determined by the aliasing error.

2

Let  $T_{\rm A}/T = 0.01$.  What is the distance  $f_{\rm A}$  of adjacent samples in the frequency domain for  $N = 128$  and  $N = 512$?

$N = 128$:     $f_{\rm A} \cdot T \ = \ $

$N = 512$:     $f_{\rm A} \cdot T \ = \ $

3

What does the product  $\text{MQF} \cdot f_{\rm A}$  indicate in terms of DFT quality?

The product  $\text{MQF} \cdot f_{\rm A}$  considers the accuracy and density of the DFT values.
The product  $\text{MQF} \cdot f_{\rm A}$  should be as large as possible.

4

  $N = 128$  is now fixed.  Which statements apply to the comparison of the DFT results with  $T_{\rm A}/T = 0.01$  und  $T_{\rm A}/T = 0.05$ ?

With  $T_{\rm A}/T = 0.05$  you get a finer frequency resolution.
With  $T_{\rm A}/T = 0.05$  the  $\rm MQF$ value is smaller.
With  $T_{\rm A}/T = 0.05$  the influence of the truncation error decreases.
With  $T_{\rm A}/T = 0.05$  the influence of the aliasing error increases.

5

Now  $N = 64$.  Which statements are true for the comparison of the DFT results with  $T_{\rm A}/T = 0.01$  und  $T_{\rm A}/T = 0.05$ ?

With  $T_{\rm A}/T = 0.05$  you get a finer frequency resolution.
With  $T_{\rm A}/T = 0.05$  the  $\rm MQF$ value is smaller.
With  $T_{\rm A}/T = 0.05$  the influence of the truncation error decreases.
With  $T_{\rm A}/T = 0.05$  the influence of the aliasing error increases.


Solution

(1)  Proposed solutions 1 and 3 are correct:

  • Already with  $N = 128$,  $T_{\rm P} = 1.28 \cdot T$, i.e. larger than the width of the rectangle.
  • Thus the truncation error plays no role at all here.
  • The  $\rm MQF$ value is determined solely by the aliasing error.
  • The numerical values clearly confirm that  $\rm MQF$  is (almost) independent of  $N$.


(2)  From  $T_{\rm A}/T = 0.01$  follows  $f_{\rm P} \cdot T = 100$.

  • The supporting values of  $X(f)$ thus lie in the range  $–50 ≤ f \cdot T < +50$.
  • For the distance between two samples in the frequency range,   $f_{\rm A} = f_{\rm P}/N$ applies. This gives the following results:
  • $N = 128$:   $f_{\rm A} \cdot T \; \underline{\approx 0.780}$,
  • $N = 512$:   $f_{\rm A} \cdot T \; \underline{\approx 0.195}$.


(3)  The first statement is correct:

  • For  $N = 128$ , the product is  $\text{MQF} \cdot f_{\rm A} \approx 4.7 \cdot 10^{-6}/T$.  For  $N = 512$ , the product is smaller by a factor of about  $4$ .
  • This means that „zero padding” does not achieve greater DFT accuracy, but a finer "resolution" of the frequency range.
  • The product  $\text{MQF} \cdot f_{\rm A}$  takes this fact into account; it should always be as small as possible.


(4)  Proposed solutions 1 and 4 are correct:

  • Because of  $T_{\rm A} \cdot f_{\rm A} \cdot N = 1$ , a constant  $N$  always results in a smaller  $f_{\rm A}$  value when  $T_{\rm A}$  is increased.
  • From the table on the information page, one can see that the mean square error  $\rm (MQF)$  is significantly increased  $($by a factor of about  $400)$.
  • The effect is due to the aliasing error, since the transition from  $T_{\rm A}/T = 0.01$  auf  $T_{\rm A}/T = 0.05$  reduces the frequency period by a factor of  $5$ .
  • The truncation error, on the other hand, continues to play no role with the rectangular pulse as long as  $T_{\rm P} = N \cdot T_{\rm A}$  is greater than the pulse duration  $T$.


(5)  All statements are true:

  • With the parameter values  $N = 64$  and  $T_{\rm A}/T = 0.01$ , an extremely large truncation error occurs.
  • All time coefficients are  $1$, so the DFT incorrectly interprets a DC signal instead of the rectangular function.