Difference between revisions of "Aufgaben:Exercise 2.16: Bounded Distance Decoding: Decision Regions"

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{{quiz-Header|Buchseite=Channel_Coding/Error_Probability_and_Areas_of_Application}}
 
{{quiz-Header|Buchseite=Channel_Coding/Error_Probability_and_Areas_of_Application}}
[[File: P_ID2583__KC_A_2_16neu.png|right|frame|Considered coding space schemes]]
+
[[File: P_ID2583__KC_A_2_16neu.png|right|frame|Two coding space schemes]]
 
We assume a block code of length  $n$  with symbols  $c_i ∈ {\rm GF}(2^m)$  that can correct up to  $t$  symbols.   
 
We assume a block code of length  $n$  with symbols  $c_i ∈ {\rm GF}(2^m)$  that can correct up to  $t$  symbols.   
 
*Each possible received word  $\underline{y}_i$  can then be viewed as a point in a high-dimensional space.  
 
*Each possible received word  $\underline{y}_i$  can then be viewed as a point in a high-dimensional space.  
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{Which statement is true for the probability that a received word  $\underline{y}$  cannot be decoded with Hamming coding?
 
{Which statement is true for the probability that a received word  $\underline{y}$  cannot be decoded with Hamming coding?
 
|type="[]"}
 
|type="[]"}
+ The probability  ${\rm Pr}(\underline{y} \rm \ is \ not \ decodable)$  is exactly zero.
+
+ The probability  ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$  is exactly zero.
- ${\rm Pr}(\underline{y} \rm \ is \ not \ decodable)$  is nonzero,  but negligible.  
+
- ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$  is nonzero,  but negligible.  
- It holds   ${\rm Pr}(\underline{y} {\rm \ is \ not \ decodable}) > {\rm Pr}(\underline{y} \rm \ is \ incorrectly \ decoded)$.
+
- It holds   ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable) > {\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} incorrectly \hspace{0.15cm} decoded)$.
  
 
{Which coding space scheme applies to the Reed–Solomon codes?
 
{Which coding space scheme applies to the Reed–Solomon codes?
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{Which statement applies to the probability that a received word  $\underline{y}$  cannot be decoded after Reed–Solomon coding?
 
{Which statement applies to the probability that a received word  $\underline{y}$  cannot be decoded after Reed–Solomon coding?
 
|type="[]"}
 
|type="[]"}
- The probability   ${\rm Pr}(\underline{y} \rm \ is \ not \ decodable)$   is exactly zero.
+
- The probability   ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$   is exactly zero.
- ${\rm Pr}(\underline{y} \rm \ is \ not \ decodable)$  is nonzero,  but negligible.  
+
- ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$  is nonzero,  but negligible.  
+ It holds   ${\rm Pr}(\underline{y} {\rm \ is \ not \ decodable}) > {\rm Pr}(\underline{y} \rm \ is \ incorrectly \ decoded)$.
+
+ It holds   ${\rm Pr}(\underline{y} {\rm \ is \ not \ decodable}) > {\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} incorrectly \hspace{0.15cm} decoded)$.
 
</quiz>
 
</quiz>
  
 
===Solution===
 
===Solution===
 
{{ML-Kopf}}
 
{{ML-Kopf}}
'''(1)'''&nbsp; Correct is <u>solution 1</u>, since the coding space scheme &nbsp;$\rm A$&nbsp; describes a perfect code and each Hamming code $(n, \, k, \, 3)$ is a perfect code:  
+
'''(1)'''&nbsp; Correct is&nbsp; <u>solution 1</u>,&nbsp; since the coding space scheme &nbsp;$\rm A$&nbsp; describes a perfect code and each Hamming code&nbsp; $(n, \, k, \, 3)$&nbsp; is a perfect code:  
*For any Hamming code $(n, \, k, \, 3)$, there are a total of $2^n$ possible received words $\underline{y}_i$, which are assigned to one of $2^k$ possible code words $\underline{c}_j$ during syndrome decoding.  
+
*For any Hamming code&nbsp; $(n, \, k, \, 3)$,&nbsp; there are a total of&nbsp; $2^n$&nbsp; possible received words&nbsp; $\underline{y}_i$,&nbsp; which are assigned to one of&nbsp; $2^k$&nbsp; possible code words&nbsp; $\underline{c}_j$&nbsp; during syndrome decoding.
*Because of the HC property $d_{\rm min} = 3$, all spheres in $n$ dimensional space have radius $t = 1$. Thus in all spheres there are $2^{n-k}$ points, for example.
+
:* $\text{HC (7, 4, 3)}$: &nbsp; one point for error-free transmission and seven points for a bit error &nbsp; &#8658; &nbsp; $1 + 7 = 8 = 2^3 = 2^{7-4}$.
+
*Because of the Hamming code property&nbsp; $d_{\rm min} = 3$,&nbsp; all spheres in the&nbsp; $n$&ndash;dimensional space have radius&nbsp; $t = 1$.&nbsp; Thus in all spheres there are&nbsp; $2^{n-k}$ points.
:* $\text{HC (15, 11, 3)}$: &nbsp; one point for error-free transmission and now 15 points for a bit error &nbsp; &#8658; &nbsp; $1 + 15 = 16 = 2^4 = 2^{15-11}$.
 
  
Note: &nbsp;Since the Hamming code is a binary code, here the code space has the dimension&nbsp; $n$.
+
:* $\text{HC (7, 4, 3)}$: &nbsp; One point for error-free transmission and seven points for one bit error &nbsp; &#8658; &nbsp; $1 + 7 = 8 = 2^3 = 2^{7-4}$.
 +
:* $\text{HC (15, 11, 3)}$: &nbsp; One point for error-free transmission and now fifteen points for one bit error &nbsp; &#8658; &nbsp; $1 + 15 = 16 = 2^4 = 2^{15-11}$.
  
 +
<u>Note:</u> &nbsp; Since the Hamming code is a binary code,&nbsp; here the code space has the dimension&nbsp; $n$.
  
  
'''(2)'''&nbsp; Correct is <u>answer 1</u>:
 
*In the gray area outside "spheres" there is not a single point in a perfect code.
 
*This was also shown in the calculation for subtask (1).
 
  
 +
'''(2)'''&nbsp; Correct is&nbsp; <u>answer 1</u>:
 +
*In the gray area outside&nbsp; "spheres"&nbsp; there is not a single point in a perfect code.
  
 +
*This was also shown in the calculation for subtask&nbsp; '''(1)'''.
  
'''(3)'''&nbsp; The Reed&ndash;Solomon codes are described by the coding space scheme &nbsp;$\rm B$&nbsp; &nbsp;&#8658;&nbsp; <u>Answer 2</u>.  
+
 
*Here there are numerous yellow points in the gray area, i.e. points that cannot be assigned to any sphere in <i>Bounded Distance Decoding</i> (BDD).
+
 
*For example, if we consider the $\rm RSC \, (7, \, 3, \, 5)_8$ with code parameters $n = 7, \, k = 3$ and $t = 2$, there are a total of $8^7 = 2097152$ points and $8^3 = 512$ hypersphere here.  
+
'''(3)'''&nbsp; The Reed&ndash;Solomon codes are described by the coding space scheme &nbsp;$\rm B$&nbsp; &nbsp; &#8658; &nbsp; <u>Answer 2</u>.  
*If this code were perfect, then there should be $8^4 = 4096$ points within each sphere. However, it holds:
+
*Here there are numerous yellow points in the gray area,&nbsp; i.e. points that cannot be assigned to any sphere in&nbsp; "Bounded Distance Decoding".
 +
 
 +
*For example,&nbsp; if we consider the &nbsp; $\rm RSC \, (7, \, 3, \, 5)_8$ &nbsp; with code parameters&nbsp; $n = 7, \, k = 3$,&nbsp; and&nbsp; $t = 2$,&nbsp; there are a total of&nbsp; $8^7 = 2097152$&nbsp; points and&nbsp; $8^3 = 512$&nbsp; hyperspheres here.  
 +
 
 +
*If this code were perfect,&nbsp; then there should be&nbsp; $8^4 = 4096$&nbsp; points within each sphere.&nbsp; However,&nbsp; it holds:
 
:$${\rm Pr}(\underline{\it y}_{\it i} {\rm \hspace{0.1cm}lies\hspace{0.1cm} within\hspace{0.1cm} the\hspace{0.1cm} red\hspace{0.1cm} sphere)}  
 
:$${\rm Pr}(\underline{\it y}_{\it i} {\rm \hspace{0.1cm}lies\hspace{0.1cm} within\hspace{0.1cm} the\hspace{0.1cm} red\hspace{0.1cm} sphere)}  
 
= {\rm Pr}(f \le t) = {\rm Pr}(f = 0)+ {\rm Pr}(f = 1)+{\rm Pr}(f = 2) =1 + {7 \choose 1} \cdot 7 + {7 \choose 2} \cdot 7^2 = 1079  
 
= {\rm Pr}(f \le t) = {\rm Pr}(f = 0)+ {\rm Pr}(f = 1)+{\rm Pr}(f = 2) =1 + {7 \choose 1} \cdot 7 + {7 \choose 2} \cdot 7^2 = 1079  
 
\hspace{0.05cm}.$$
 
\hspace{0.05cm}.$$
  
*For ${\rm Pr}(f = 1)$ it is considered that there can be "$7 \rm \ over \ 1$" $= 7$ error positions, and for each error position also seven different error values. The same is considered for ${\rm Pr}(f = 2)$.
+
*For&nbsp; ${\rm Pr}(f = 1)$&nbsp; it is considered that there can be&nbsp; "$7 \rm \ over \ 1$" $= 7$&nbsp; error positions,&nbsp; and for each error position also seven different error values.&nbsp; The same is considered for&nbsp; ${\rm Pr}(f = 2)$.
  
  
  
'''(4)'''&nbsp; Correct is <u>answer 3</u>:
+
'''(4)'''&nbsp; Correct is&nbsp; <u>answer 3</u>:
*A point in gray no-man's land is reached with fewer symbol errors than a point in another hypersphere.  
+
*A point in gray no-man's land is reached with fewer symbol errors than a point in another hypersphere.
*For long codes, an upper bound on the corruption probability is given in the literature:
+
 +
*For long codes,&nbsp; an upper bound on the error probability is given in the literature:
  
:$${\rm Pr}(\underline{y}_{i} {\rm \hspace{0.15cm}wird\hspace{0.15cm} falsch\hspace{0.15cm} decodiert)}
+
:$${\rm Pr}(\underline{y} {\rm \hspace{0.15cm} is \hspace{0.15cm} incorrectly \hspace{0.15cm} decoded})  
 
= {\rm Pr}(\underline{z} \ne \underline{c}) \le \frac{1}{t\hspace{0.05cm}!}
 
= {\rm Pr}(\underline{z} \ne \underline{c}) \le \frac{1}{t\hspace{0.05cm}!}
 
\hspace{0.05cm}.$$
 
\hspace{0.05cm}.$$
*For the ${\rm RSC} \, (225, \, 223, \, 33)_{256} \ \Rightarrow \ t = 16$, this upper bound yields the value $1/(16!) < 10^{-14}$.
+
*For the ${\rm RSC} \, (225, \, 223, \, 33)_{256} \ \Rightarrow \ t = 16$ &nbsp; &rArr; &nbsp; this upper bound yields the value&nbsp; $1/(16!) < 10^{-14}$.
 
{{ML-Fuß}}
 
{{ML-Fuß}}
  

Revision as of 15:26, 2 November 2022

Two coding space schemes

We assume a block code of length  $n$  with symbols  $c_i ∈ {\rm GF}(2^m)$  that can correct up to  $t$  symbols. 

  • Each possible received word  $\underline{y}_i$  can then be viewed as a point in a high-dimensional space.
  • Assuming the basis  ${\rm GF}(2) = \{0, \, 1\}$  the dimension is  $n \cdot m$.


The diagram shows such spaces in schematic two-dimensional representation.  The illustration is to be interpreted as follows:

  1. The red dot  $\underline{c}_j$  was sent.  All red outlined points  $\underline{y}_i$  in a hypersphere around this point  $\underline{c}_j$  with the parameter  $t$  as radius can be corrected.  Using the nomenclature according to the  $\rm graph$  in the theory section,  then  $\underline{z}_i = \underline{c}_j$  
    ⇒   "Error correction is successful".
  2. For very many symbol errors,  $\underline{c}_j$  may be corrupted into a blue  $($or white-blue$)$  dot  $\underline{y}_j$  belonging to the hypersphere of another code word  $\underline{c}_{k ≠ j}$.  In this case the decoder makes a wrong decision  
    ⇒   "The received word  $\underline{y}_j$  is decoded incorrectly".
  3. Finally,  as in the sketch below,  there may be yellow dots that do not belong to any hypersphere  
    ⇒   "The received word  $\underline{y}_j$  is not decodable".


In this exercise you are to decide which of the two code space schemes is suitable for describing



Hints:

  • It is intended to illustrate significant differences in decoding Reed–Solomon codes and Hamming codes.


Questions

1

Which coding space scheme applies to the Hamming codes?

Coding space scheme  $\rm A$,
Coding space scheme  $\rm B$.

2

Which statement is true for the probability that a received word  $\underline{y}$  cannot be decoded with Hamming coding?

The probability  ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$  is exactly zero.
${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$  is nonzero,  but negligible.
It holds   ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable) > {\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} incorrectly \hspace{0.15cm} decoded)$.

3

Which coding space scheme applies to the Reed–Solomon codes?

Coding space scheme  $\rm A$,
Coding space scheme  $\rm B$.

4

Which statement applies to the probability that a received word  $\underline{y}$  cannot be decoded after Reed–Solomon coding?

The probability   ${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$   is exactly zero.
${\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} not \hspace{0.15cm} decodable)$  is nonzero,  but negligible.
It holds   ${\rm Pr}(\underline{y} {\rm \ is \ not \ decodable}) > {\rm Pr}(\underline{y} \rm \hspace{0.15cm} is \hspace{0.15cm} incorrectly \hspace{0.15cm} decoded)$.


Solution

(1)  Correct is  solution 1,  since the coding space scheme  $\rm A$  describes a perfect code and each Hamming code  $(n, \, k, \, 3)$  is a perfect code:

  • For any Hamming code  $(n, \, k, \, 3)$,  there are a total of  $2^n$  possible received words  $\underline{y}_i$,  which are assigned to one of  $2^k$  possible code words  $\underline{c}_j$  during syndrome decoding.
  • Because of the Hamming code property  $d_{\rm min} = 3$,  all spheres in the  $n$–dimensional space have radius  $t = 1$.  Thus in all spheres there are  $2^{n-k}$ points.
  • $\text{HC (7, 4, 3)}$:   One point for error-free transmission and seven points for one bit error   ⇒   $1 + 7 = 8 = 2^3 = 2^{7-4}$.
  • $\text{HC (15, 11, 3)}$:   One point for error-free transmission and now fifteen points for one bit error   ⇒   $1 + 15 = 16 = 2^4 = 2^{15-11}$.

Note:   Since the Hamming code is a binary code,  here the code space has the dimension  $n$.


(2)  Correct is  answer 1:

  • In the gray area outside  "spheres"  there is not a single point in a perfect code.
  • This was also shown in the calculation for subtask  (1).


(3)  The Reed–Solomon codes are described by the coding space scheme  $\rm B$    ⇒   Answer 2.

  • Here there are numerous yellow points in the gray area,  i.e. points that cannot be assigned to any sphere in  "Bounded Distance Decoding".
  • For example,  if we consider the   $\rm RSC \, (7, \, 3, \, 5)_8$   with code parameters  $n = 7, \, k = 3$,  and  $t = 2$,  there are a total of  $8^7 = 2097152$  points and  $8^3 = 512$  hyperspheres here.
  • If this code were perfect,  then there should be  $8^4 = 4096$  points within each sphere.  However,  it holds:
$${\rm Pr}(\underline{\it y}_{\it i} {\rm \hspace{0.1cm}lies\hspace{0.1cm} within\hspace{0.1cm} the\hspace{0.1cm} red\hspace{0.1cm} sphere)} = {\rm Pr}(f \le t) = {\rm Pr}(f = 0)+ {\rm Pr}(f = 1)+{\rm Pr}(f = 2) =1 + {7 \choose 1} \cdot 7 + {7 \choose 2} \cdot 7^2 = 1079 \hspace{0.05cm}.$$
  • For  ${\rm Pr}(f = 1)$  it is considered that there can be  "$7 \rm \ over \ 1$" $= 7$  error positions,  and for each error position also seven different error values.  The same is considered for  ${\rm Pr}(f = 2)$.


(4)  Correct is  answer 3:

  • A point in gray no-man's land is reached with fewer symbol errors than a point in another hypersphere.
  • For long codes,  an upper bound on the error probability is given in the literature:
$${\rm Pr}(\underline{y} {\rm \hspace{0.15cm} is \hspace{0.15cm} incorrectly \hspace{0.15cm} decoded}) = {\rm Pr}(\underline{z} \ne \underline{c}) \le \frac{1}{t\hspace{0.05cm}!} \hspace{0.05cm}.$$
  • For the ${\rm RSC} \, (225, \, 223, \, 33)_{256} \ \Rightarrow \ t = 16$   ⇒   this upper bound yields the value  $1/(16!) < 10^{-14}$.