Difference between revisions of "Aufgaben:Exercise 3.6: Adaptive Multi Rate Codec"

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[[File:En_Bei_A_3_6.png|right|frame|Tracks of the AMR codec]]
 
[[File:En_Bei_A_3_6.png|right|frame|Tracks of the AMR codec]]
In the late 1990s, a very flexible, adaptive speech codec was developed and standardised in the form of the AMR codec. This provides a total of eight different modes with data rates between  $4.75 \ \rm kbit/s$  and  $12.2 \ \rm kbit/s$ .
+
In the late 1990s,  a very flexible,  adaptive speech codec was developed and standardized in the form of  $\rm AMR$  codec.  This provides a total of eight different modes with data rates between  $4.75 \ \rm kbit/s$  and  $12.2 \ \rm kbit/s$.
  
The AMR codec, like the full rate codec (FRC) discussed in  [[Aufgaben:Exercise_3.5:_GSM_Full-Rate_Voice_Codec|"Exercise 3.5"]] , includes both a short-term prediction (LPC) and a long-term prediction (LTP). However, these two components are realised differently from FRC.
+
The AMR codec,  like the full rate codec  $\rm (FRC)$  discussed in  [[Aufgaben:Exercise_3.5:_GSM_Full_Rate_Vocoder|$\text{Exercise 3.5}$]],  includes both a short-term prediction  $\rm (LPC)$  and a long-term prediction  $\rm (LTP)$.  However,  these two components are realized differently from FRC.
  
The main difference between AMR and FRC is the coding of the residual signal (after LPC and LTP):  
+
The main difference between AMR and FRC is the encoding of the residual signal  $($after LPC and LTP$)$:  
*Instead of "Regular Pulse Excitation" (RPE), the "Algebraic Code Excitation Linear Prediction" (ACELP) procedure is used for the AMR code.  
+
#Instead of  "Regular Pulse Excitation"  $\rm (RPE)$,  here the  "Algebraic Code Excitation Linear Prediction"  $\rm (ACELP)$  is used.  
*From the fixed codebook (FCB), for each subframe of  $5 \ \rm ms$  duration, the FCB pulse and FCB gain that best match the residual signal (for which the mean square error of the difference signal becomes minimum) is selected.
+
#From the fixed code book  $\rm (FCB)$,  for each subframe of  $5 \ \rm ms$  duration,  the  "FCB pulse"  and the  "FCB gain"  that best match the residual signal  $($for which the mean square error of the difference signal becomes minimum$)$  is selected.
  
  
Each entry in the fixed codebook identifies a pulse where exactly  $10$  of  $40$  positions are occupied by  $\pm1$ . In this regard it should be noted:
+
Each entry in the fixed code book identifies a pulse where exactly  $10$  of  $40$  positions are occupied by  $\pm1$. 
*The pulse is divided into five tracks with eight possible positions each, where track  $1$  contains the positions  $1,\ 6,\ 11$, ... , $36$  of the subframe and track  $5$  the positions  $5,\ 10,\ 15$, ... , $40$  describes.
 
*In each track there are exactly two values  $\pm1$, while all the other six values are  $0$ . The two  $±1$-positions are each assigned three bits - i.e. with  $000$, ... ,  $111$ - are coded.
 
*Another bit is used for the sign of the first-mentioned pulse, where a "$1$" indicates a positive sign and a "$0$" a negative sign.
 
*If the pulse position of the second pulse is greater than that of the first pulse, the second pulse has the same sign as the first, otherwise the opposite.
 
*Thus, seven bits per track are transmitted to the receiver, plus five bits for the so-called ''FCB amplification''.
 
  
 +
In this regard it should be noted:
 +
*The pulse is divided into five tracks with eight possible positions each, where track  $1$  contains the positions  $1,\ 6,\ 11$, ... , $36$  of the subframe and track  $5$   describes the positions  $5,\ 10,\ 15$, ... , $40$.
  
In the diagram, the  $35$  bits describing an FCB pulse are given as an example.
+
*In each track there are exactly two values  $\pm1$,  while all the other six values are  zero. 
 +
 
 +
*The two  $±1$-positions are each assigned three bits –   i.e. encoded with  "$000$", ... ,  "$111$".
 +
 
 +
*Another bit is used for the  "sign of the first-mentioned pulse",  where a  "$1$"  indicates a positive sign and a  "$0$"  a negative sign.
 +
 
 +
*If the pulse position of the second pulse is greater than that of the first pulse,  the second pulse has the same sign as the first,  otherwise the opposite.
 +
 
 +
*Thus,  seven bits per track are transmitted to the receiver,  plus five bits for the so-called  "FCB amplification''.
 +
 
 +
 
 +
In the diagram,  the  $35$  bits describing an FCB pulse are given as an example:
 
   
 
   
'''Track 1''' includes.
+
⇒   '''Track 1'''  includes
*a positive pulse  $({\rm VZ} = 1)$  at  $1$  (first possible position for track 1)  $\hspace{0.2cm}\text{plus}\hspace{0.2cm}0$ (bit specification for " 000") $= 1$,
+
#a positive pulse  $({\rm sign} = 1)$  at position  $\big [1$  (first possible position for track 1)  $\hspace{0.02cm}\text{plus}\hspace{0.2cm}0$  (bit specification for  "000") $= 1\big]$,
*another positive pulse (since $110 > 000$) at position $1 \hspace{0.2cm}\text{plus}\hspace{0.2cm}5$ (pulse spacing in each track) $\hspace{0.2cm}\text{mal}\hspace{0.2cm}6$ (bit specification for " 110") = $31\hspace{0.05cm}.$
+
#another positive pulse  $($since $110 > 000)$  at position  $\big [1 \hspace{0.2cm}\text{plus}\hspace{0.2cm}5$ (pulse spacing in each track) $\hspace{0.02cm}\text{times}\hspace{0.2cm}6$  (bit specification for " 110") = $31\hspace{0.05cm}\big].$
  
  
 
'''Track 2''' includes.
 
'''Track 2''' includes.
*a negative pulse (${\rm VZ} = 0$) at $2$ (first possible position for track 2) $\hspace{0.2cm}\text{plus}\hspace{0.2cm}5\hspace{0.2cm}\text{mal}\hspace{0.2cm}4$ (bit specification for " 100") = $22\hspace{0.05cm},$
+
#a negative pulse (${\rm sign} = 0$)  at position  $\big [2$ (first possible position for track 2)  $\hspace{0.02cm}\text{plus}\hspace{0.2cm}5\hspace{0.2cm}\text{times}\hspace{0.2cm}4$  (bit specification for  " 100")   $=22\hspace{0.05cm}\big],$
*a positive pulse (sign reversal due to $011 > 100$) at position $2 \hspace{0.2cm}\text{plus}\hspace{0.2cm}5\hspace{0.2cm}\text{mal}\hspace{0.2cm}3$ (bit specification for " 011") = $17\hspace{0.05cm}.$
+
#a positive pulse  $($sign reversal due to  $011 > 100)$  at position  $\big [2 \hspace{0.2cm}\text{plus}\hspace{0.2cm}5\hspace{0.2cm}\text{times}\hspace{0.2cm}3$  (bit specification for  " 011")   $=17\hspace{0.05cm}\big].$
  
  
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Hint:  
+
<u>Hint:</u>
  
 
*This exercise belongs to the chapter&nbsp; [[Examples_of_Communication_Systems/Voice_Coding|"Speech Coding"]].
 
*This exercise belongs to the chapter&nbsp; [[Examples_of_Communication_Systems/Voice_Coding|"Speech Coding"]].
 
   
 
   
 
*When entering the pulse positions&nbsp; $N_{1}$&nbsp; denotes the first triple of bits and&nbsp; $N_{2}$&nbsp; the second.
 
*When entering the pulse positions&nbsp; $N_{1}$&nbsp; denotes the first triple of bits and&nbsp; $N_{2}$&nbsp; the second.
*For example, for track&nbsp; $2$&nbsp; one would have to enter the values&nbsp; $N_{1}=-22$&nbsp; and&nbsp; $N_{2}=+17$&nbsp;.   
+
 
 +
*For example,&nbsp; for track&nbsp; $2$&nbsp; one would have to enter the values&nbsp; $N_{1}=-22$&nbsp; and&nbsp; $N_{2}=+17$.   
  
  
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{How many bits describe a speech frame $($of duration&nbsp; $20 \ \rm ms)$&nbsp; in&nbsp; $12.2 \ \rm kbit/s$ mode?
 
{How many bits describe a speech frame $($of duration&nbsp; $20 \ \rm ms)$&nbsp; in&nbsp; $12.2 \ \rm kbit/s$ mode?
 
|type="{}"}
 
|type="{}"}
$N_{12.2} \ = \ $ { 244 3% } $ \ \rm Bit$
+
$N_{12.2} \ = \ $ { 244 3% } $ \ \rm bits$
  
 
{How many bits are needed for FCB pulse and gain per frame?
 
{How many bits are needed for FCB pulse and gain per frame?
 
|type="{}"}
 
|type="{}"}
$N_{\rm FCB} \ = \ $ { 160 3% } $ \ \rm Bit$
+
$N_{\rm FCB} \ = \ $ { 160 3% } $ \ \rm bits$
  
 
{ How many bits are left for LPC and LTP?
 
{ How many bits are left for LPC and LTP?
 
|type="{}"}
 
|type="{}"}
$N_{\rm LPC/LTP} \ = \ $ { 84 3% } $ \ \rm Bit$
+
$N_{\rm LPC/LTP} \ = \ $ { 84 3% } $ \ \rm bits$
  
{What subframe pulse positions and signs does track&nbsp; $3$ describe? <br>Follow the instructions for input on the input page.
+
{What subframe pulse positions and signs does track&nbsp; $3$&nbsp; describe?&nbsp; Follow the instructions for input on the information page.
 
|type="{}"}
 
|type="{}"}
 
$N_{1} \ = \ $ { -8.24--7.76 }  
 
$N_{1} \ = \ $ { -8.24--7.76 }  
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{{ML-Kopf}}
 
{{ML-Kopf}}
  
'''(1)'''&nbsp; With the data rate $12.2 \ \rm kbit/s$, exactly $\underline{244 \ \rm bit}$ results within $20 \ \rm ms$, while for example in $4.75 \ \rm kbit/s$ mode only $95 \ \rm bit$ is transmitted.
+
'''(1)'''&nbsp; With the data rate&nbsp; $R_{\rm C} = 12.2 \ \rm kbit/s$,&nbsp; exactly&nbsp; $\underline{244 \ \rm bits}$&nbsp; results within&nbsp; $20 \ \rm ms$,&nbsp; while e.g. in&nbsp; $4.75 \ \rm kbit/s$&nbsp; mode only&nbsp; $95 \ \rm bits$&nbsp; are transmitted.
 +
 
  
 +
'''(2)'''&nbsp; In each subframe,&nbsp; the FCB pulse requires&nbsp; $35 \ \rm bits$&nbsp; (five tracks of seven bits each)&nbsp; and the FCB gain requires five bits.
  
'''(2)'''&nbsp; In each subframe, the FCB pulse requires $35 \ \rm bit$ (five tracks of seven bits each) and the FCB gain requires five bits.
+
*With four subframes,&nbsp; this gives $N_{\rm FCB} \hspace{0.15cm}\underline{= 160 \ \rm bits}$.
*With four subframes, this gives $N_{\rm FCB} \underline{= 160 \ \rm bits}$.
 
  
  
  
'''(3)'''&nbsp; This leaves the difference from (1) and (2), i.e. $N_{\rm LPC/LTP}\underline{ = 84 \rm bits}$.
+
'''(3)'''&nbsp; This leaves the difference from&nbsp; '''(1)'''&nbsp; and&nbsp; '''(2)''',&nbsp; i.e. $N_{\rm LPC/LTP}\hspace{0.15cm} \underline{ = 84\rm bits}$.
  
  
'''(4)'''&nbsp; The sign bit "$0$" indicates a negative first pulse.  
+
'''(4)'''&nbsp; The sign bit&nbsp; "$0$"&nbsp; indicates a negative first pulse.  
*Because $001 < 011$, the second pulse has the same sign.  
+
*Because&nbsp; $001 < 011$,&nbsp; the second pulse has the same sign.
*The two amounts result in
+
:$$|N_1| \ = \ 3 \hspace{0.1cm}{\rm(da \hspace{0.1cm} track \hspace{0.1cm}3)} + 5\cdot 1 \hspace{0.1cm} {\rm(bit\:specification \hspace{0.1cm} 001)} = 8\hspace{0.05cm}, $$
+
*The two magnitudes result in
:$$ |N_2| \ = \ 3 \hspace{0.1cm}{\rm(da \hspace{0.1cm} track \hspace{0.1cm}3)} + 5\cdot 3 \hspace{0.1cm} {\rm(bit\:specification \hspace{0.1cm} 011)} = 18\hspace{0.05cm}.$$
+
:$$|N_1| \ = \ 3 \hspace{0.1cm}{\rm(since \hspace{0.1cm} track \hspace{0.1cm}3)} + 5\cdot 1 \hspace{0.1cm} {\rm(bit\:specification \hspace{0.1cm} 001)} = 8\hspace{0.05cm}, $$
*Therefore, to be entered for the third track is $N_{1} \underline{ = -8}$ and $N_{2} \underline{ = -18}.$
+
:$$ |N_2| \ = \ 3 \hspace{0.1cm}{\rm(since \hspace{0.1cm} track \hspace{0.1cm}3)} + 5\cdot 3 \hspace{0.1cm} {\rm(bit\:specification \hspace{0.1cm} 011)} = 18\hspace{0.05cm}.$$
 +
*Therefore,&nbsp; to be entered for the third track is&nbsp; $N_{1}\hspace{0.15cm} \underline{ = -8}$&nbsp; and&nbsp; $N_{2} \hspace{0.15cm}\underline{ = -18}.$
  
  
'''(5)'''&nbsp; In an analogous way, for track $4$ we obtain the values&nbsp; $N_{1} \underline{ = +39}$&nbsp; and&nbsp; $N_{2} \underline{ = -14}$.
+
'''(5)'''&nbsp; In an analogous way,&nbsp; for track&nbsp; $4$&nbsp; we obtain the values&nbsp; $N_{1}\hspace{0.15cm} \underline{ = +39}$&nbsp; and&nbsp; $N_{2}\hspace{0.15cm} \underline{ = -14}$.
  
  
'''(6)'''&nbsp; The fifth track provides&nbsp; $N_{1} \underline{ =-30}$&nbsp; and&nbsp; $N_{2} \underline{ = +5}$
+
'''(6)'''&nbsp; The fifth track provides&nbsp; $N_{1}\hspace{0.15cm} \underline{ =-30}$&nbsp; and&nbsp; $N_{2}\hspace{0.15cm} \underline{ = +5}$
  
 
{{ML-Fuß}}
 
{{ML-Fuß}}

Latest revision as of 13:58, 25 January 2023

Tracks of the AMR codec

In the late 1990s,  a very flexible,  adaptive speech codec was developed and standardized in the form of  $\rm AMR$  codec.  This provides a total of eight different modes with data rates between  $4.75 \ \rm kbit/s$  and  $12.2 \ \rm kbit/s$.

The AMR codec,  like the full rate codec  $\rm (FRC)$  discussed in  $\text{Exercise 3.5}$,  includes both a short-term prediction  $\rm (LPC)$  and a long-term prediction  $\rm (LTP)$.  However,  these two components are realized differently from FRC.

The main difference between AMR and FRC is the encoding of the residual signal  $($after LPC and LTP$)$:

  1. Instead of  "Regular Pulse Excitation"  $\rm (RPE)$,  here the  "Algebraic Code Excitation Linear Prediction"  $\rm (ACELP)$  is used.
  2. From the fixed code book  $\rm (FCB)$,  for each subframe of  $5 \ \rm ms$  duration,  the  "FCB pulse"  and the  "FCB gain"  that best match the residual signal  $($for which the mean square error of the difference signal becomes minimum$)$  is selected.


Each entry in the fixed code book identifies a pulse where exactly  $10$  of  $40$  positions are occupied by  $\pm1$. 

In this regard it should be noted:

  • The pulse is divided into five tracks with eight possible positions each, where track  $1$  contains the positions  $1,\ 6,\ 11$, ... , $36$  of the subframe and track  $5$  describes the positions  $5,\ 10,\ 15$, ... , $40$.
  • In each track there are exactly two values  $\pm1$,  while all the other six values are  zero. 
  • The two  $±1$-positions are each assigned three bits –   i.e. encoded with  "$000$", ... ,  "$111$".
  • Another bit is used for the  "sign of the first-mentioned pulse",  where a  "$1$"  indicates a positive sign and a  "$0$"  a negative sign.
  • If the pulse position of the second pulse is greater than that of the first pulse,  the second pulse has the same sign as the first,  otherwise the opposite.
  • Thus,  seven bits per track are transmitted to the receiver,  plus five bits for the so-called  "FCB amplification.


In the diagram,  the  $35$  bits describing an FCB pulse are given as an example:

⇒   Track 1  includes

  1. a positive pulse  $({\rm sign} = 1)$  at position  $\big [1$  (first possible position for track 1)  $\hspace{0.02cm}\text{plus}\hspace{0.2cm}0$  (bit specification for  "000") $= 1\big]$,
  2. another positive pulse  $($since $110 > 000)$  at position  $\big [1 \hspace{0.2cm}\text{plus}\hspace{0.2cm}5$ (pulse spacing in each track) $\hspace{0.02cm}\text{times}\hspace{0.2cm}6$  (bit specification for " 110") = $31\hspace{0.05cm}\big].$


Track 2 includes.

  1. a negative pulse (${\rm sign} = 0$)  at position  $\big [2$ (first possible position for track 2)  $\hspace{0.02cm}\text{plus}\hspace{0.2cm}5\hspace{0.2cm}\text{times}\hspace{0.2cm}4$  (bit specification for  " 100")  $=22\hspace{0.05cm}\big],$
  2. a positive pulse  $($sign reversal due to  $011 > 100)$  at position  $\big [2 \hspace{0.2cm}\text{plus}\hspace{0.2cm}5\hspace{0.2cm}\text{times}\hspace{0.2cm}3$  (bit specification for  " 011")  $=17\hspace{0.05cm}\big].$




Hint:

  • When entering the pulse positions  $N_{1}$  denotes the first triple of bits and  $N_{2}$  the second.
  • For example,  for track  $2$  one would have to enter the values  $N_{1}=-22$  and  $N_{2}=+17$.


Questions

1

How many bits describe a speech frame $($of duration  $20 \ \rm ms)$  in  $12.2 \ \rm kbit/s$ mode?

$N_{12.2} \ = \ $

$ \ \rm bits$

2

How many bits are needed for FCB pulse and gain per frame?

$N_{\rm FCB} \ = \ $

$ \ \rm bits$

3

How many bits are left for LPC and LTP?

$N_{\rm LPC/LTP} \ = \ $

$ \ \rm bits$

4

What subframe pulse positions and signs does track  $3$  describe?  Follow the instructions for input on the information page.

$N_{1} \ = \ $

$N_{2} \ = \ $

5

What pulse positions including sign describe the track  $4$?

$N_{1} \ = \ $

$N_{2} \ = \ $

6

What pulse positions including sign describe the track  $5$?

$N_{1} \ = \ $

$N_{2} \ = \ $


Solution

(1)  With the data rate  $R_{\rm C} = 12.2 \ \rm kbit/s$,  exactly  $\underline{244 \ \rm bits}$  results within  $20 \ \rm ms$,  while e.g. in  $4.75 \ \rm kbit/s$  mode only  $95 \ \rm bits$  are transmitted.


(2)  In each subframe,  the FCB pulse requires  $35 \ \rm bits$  (five tracks of seven bits each)  and the FCB gain requires five bits.

  • With four subframes,  this gives $N_{\rm FCB} \hspace{0.15cm}\underline{= 160 \ \rm bits}$.


(3)  This leaves the difference from  (1)  and  (2),  i.e. $N_{\rm LPC/LTP}\hspace{0.15cm} \underline{ = 84\ \rm bits}$.


(4)  The sign bit  "$0$"  indicates a negative first pulse.

  • Because  $001 < 011$,  the second pulse has the same sign.
  • The two magnitudes result in
$$|N_1| \ = \ 3 \hspace{0.1cm}{\rm(since \hspace{0.1cm} track \hspace{0.1cm}3)} + 5\cdot 1 \hspace{0.1cm} {\rm(bit\:specification \hspace{0.1cm} 001)} = 8\hspace{0.05cm}, $$
$$ |N_2| \ = \ 3 \hspace{0.1cm}{\rm(since \hspace{0.1cm} track \hspace{0.1cm}3)} + 5\cdot 3 \hspace{0.1cm} {\rm(bit\:specification \hspace{0.1cm} 011)} = 18\hspace{0.05cm}.$$
  • Therefore,  to be entered for the third track is  $N_{1}\hspace{0.15cm} \underline{ = -8}$  and  $N_{2} \hspace{0.15cm}\underline{ = -18}.$


(5)  In an analogous way,  for track  $4$  we obtain the values  $N_{1}\hspace{0.15cm} \underline{ = +39}$  and  $N_{2}\hspace{0.15cm} \underline{ = -14}$.


(6)  The fifth track provides  $N_{1}\hspace{0.15cm} \underline{ =-30}$  and  $N_{2}\hspace{0.15cm} \underline{ = +5}$