Difference between revisions of "Aufgaben:Exercise 3.6: Partitioning Inequality"
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{{ML-Kopf}} | {{ML-Kopf}} | ||
| − | '''(1)''' For the Kullback-Leibler distance holds: | + | '''(1)''' For the Kullback-Leibler distance of the non-partitioned quantities $X$ and $Y$ holds: |
:$$D(P_X \hspace{0.05cm} || \hspace{0.05cm}P_Y) = {\rm E} \left [ {\rm log}_2 \hspace{0.1cm} \frac{P_X(X)}{P_Y(X)}\right ] \hspace{0.2cm}=\hspace{0.2cm} \sum_{x \hspace{0.05cm}\in \hspace{0.05cm}X} | :$$D(P_X \hspace{0.05cm} || \hspace{0.05cm}P_Y) = {\rm E} \left [ {\rm log}_2 \hspace{0.1cm} \frac{P_X(X)}{P_Y(X)}\right ] \hspace{0.2cm}=\hspace{0.2cm} \sum_{x \hspace{0.05cm}\in \hspace{0.05cm}X} | ||
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| − | '''(2)''' With $\text{partition A | + | '''(2)''' With $\text{partition }A$ ⇒ $A_1 = \{0\}$ , $A_2 = \{ 1 , 2 \}$ we get $P_X^{ (A) } (X) = \{1/4 , \ 3/4\}$ and $Q_X^{ (A) } (X) = \{1/8 , \ 7/8\}$. From this follows: |
:$$D(P_X^{\hspace{0.15cm}(A)} \hspace{0.05cm}|| \hspace{0.05cm} Q_X^{\hspace{0.15cm}(A)}) = \frac{1}{4}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/4}{1/8} + | :$$D(P_X^{\hspace{0.15cm}(A)} \hspace{0.05cm}|| \hspace{0.05cm} Q_X^{\hspace{0.15cm}(A)}) = \frac{1}{4}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/4}{1/8} + | ||
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| − | '''(3)''' With $\text{partition B | + | '''(3)''' With $\text{partition } B$ ⇒ $B_1 = \{1\}$ , $B_2 = \{ 0 ,\ 2 \}$ the probability functions are $P_X^{ (B) } (X) = \{1/2 , \ 1/2\}$ und $Q_X^{ (B) } (X) = \{3/4 , \ 1/4\}$. |
*Analogous to subtask '''(2)''' one thus obtains: | *Analogous to subtask '''(2)''' one thus obtains: | ||
:$$D(P_X^{\hspace{0.15cm}(B)} \hspace{0.05cm}|| \hspace{0.05cm} Q_X^{\hspace{0.15cm}(B)}) = \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/2}{3/4} + | :$$D(P_X^{\hspace{0.15cm}(B)} \hspace{0.05cm}|| \hspace{0.05cm} Q_X^{\hspace{0.15cm}(B)}) = \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/2}{3/4} + | ||
\frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/2}{1/4} \hspace{0.15cm} \underline {=0.2075\,{\rm (bit)}} | \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/2}{1/4} \hspace{0.15cm} \underline {=0.2075\,{\rm (bit)}} | ||
\hspace{0.05cm}.$$ | \hspace{0.05cm}.$$ | ||
| − | *The result agrees with that of subtask '''(1)''' ⇒ With $\text{partition B | + | *The result agrees with that of subtask '''(1)''' ⇒ With $\text{partition }B$ the equal sign applies. |
| − | '''(4)''' With $\text{partition C | + | '''(4)''' With $\text{partition } C$ ⇒ $C_1 = \{2\}$ , $C_2 = \{ 0 , \ 1\}$ one obtains $P_X^{ (C) } (X) = \{1/4, \ 3/4\}$ , $Q_X^{ (C) } (X) = \{1/8, \ 7/8\}$, <br>i.e. the same functions as for the $\text{partition }A$ ⇒ <u>solution proposal 1</u>. |
| − | '''(5)''' The $\text{partition | + | '''(5)''' The $\text{partition }B$ has led to the result $D(P_X^{ (B) } \hspace{0.05cm} || \hspace{0.05cm}Q_X^{ (B) } ) = D(P_X \hspace{0.05cm} || \hspace{0.05cm}Q_X)$. |
*So for this case | *So for this case | ||
:$$\frac{P_X(1)}{Q_X(1)} = \frac{1/2}{3/4} = \frac{2}{3}, \ \frac{P_X(B_1)}{Q_X(B_1)} = \frac{1/2}{3/4} = {2}/{3},$$ | :$$\frac{P_X(1)}{Q_X(1)} = \frac{1/2}{3/4} = \frac{2}{3}, \ \frac{P_X(B_1)}{Q_X(B_1)} = \frac{1/2}{3/4} = {2}/{3},$$ | ||
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*It must therefore hold for all $x \in X$ : | *It must therefore hold for all $x \in X$ : | ||
| − | :$$\frac{P_X(x)}{Q_X(x)} = \frac{P_X(B_1)}{Q_X(B_1)}, \text{ | + | :$$\frac{P_X(x)}{Q_X(x)} = \frac{P_X(B_1)}{Q_X(B_1)}, \text{ if } x \in B_1, \hspace{0.5cm}\frac{P_X(x)}{Q_X(x)} = \frac{P_X(B_2)}{Q_X(B_2)}, \text{ if } x \in B_2.$$ |
*By generalisation, one can see that <u>both proposed solutions</u> are correct. | *By generalisation, one can see that <u>both proposed solutions</u> are correct. | ||
Revision as of 17:13, 31 August 2021
Two probability functions $P_X$ and $Q_X$
The Kullback–Leibler distance (KLD for short) is also used in the "Partition Unequality":
- We assume the set $X = \{ x_1, \hspace{0.15cm} x_2, \text{...} \hspace{0.05cm}, \hspace{0.15cm} x_M \}$ and the probability functions
- $$P_X(X) = P_X ( x_1, \hspace{0.15cm} x_2, \text{...} \hspace{0.05cm}, \hspace{0.15cm} x_M )\hspace{0.05cm},$$
- $$Q_X(X) =Q_X ( x_1, \hspace{0.15cm} x_2, \text{...} \hspace{0.05cm}, \hspace{0.15cm} x_M ), $$
- which are said to be "similar in some way".
- We divide the set $X$ into partitions $A_1, \text{...} , A_K$, which are disjoint to each other and result in a complete system :
- $$\bigcup_{i=1}^{K} = X, \hspace{0.5cm} A_i \cap A_j = {\it \phi} \hspace{0.25cm}\text{für}\hspace{0.25cm} 1 \le i \ne j \le K .$$
- In the following, we denote the probability functions with respect to the partitionings $A_1,\ A_2, \text{...} ,\ A_K$ by
- $$P_X^{\hspace{0.15cm}(A)} = \big [ P_X ( A_1 )\hspace{0.05cm}, \hspace{0.05cm}\text{...}\hspace{0.1cm},P_X ( A_K ) \big ],\hspace{0.05cm}\hspace{0.5cm}{\rm where}\hspace{0.15cm} P_X ( A_i ) = \sum_{ x \in A_i} P_X ( x )\hspace{0.05cm},$$
- $$Q_X^{\hspace{0.15cm}(A)}= \big [ Q_X ( A_1 )\hspace{0.05cm}, \hspace{0.05cm}\text{...}\hspace{0.1cm},Q_X ( A_K ) \big ],\hspace{0.05cm}\hspace{0.40cm}{\rm where}\hspace{0.15cm} Q_X ( A_i ) = \sum_{ x \in A_i} Q_X ( x )\hspace{0.05cm}. $$
$\text{Please note:}$ The partitioning inequality yields the following size relation with respect to the Kullback-Leibler distances:
- $$D(P_X^{\hspace{0.15cm}(A)} \hspace{0.05cm} \vert \vert \hspace{0.05cm} Q_X^{\hspace{0.15cm}(A)}) \hspace{0.25cm}\le \hspace{0.25cm}D(P_X \hspace{0.05cm}\vert \vert \hspace{0.05cm} Q_X) \hspace{0.05cm}.$$
In subtask (1) the Kullback-Leibler distance of the two probability functions $P_X(X)$ and $Q_X(X)$ for $X = \{0,\ 1,\ 2\}$ ⇒ $|X| = 3$ is to be determined.
- Then the set $X$ is to be partitioned with $K = 2$ according to
- $A = \{A_1 ,\ A_2\}$ with $A_1 =\{0\}$ and $A_2 = \{ 1,\ 2 \}$ ,
- $B = \{B_1 ,\ B_2\}$ with $B_1 =\{1\}$ and $B_2 = \{ 0,\ 2 \}$,
- $C = \{C_1 ,\ C_2\}$ with $C_1 =\{2\}$ and $C_2 = \{ 0,\ 1\}$.
- Then the respective Kullback-Leibler distances are to be given:
- $D(P_X^{ (A) } \hspace{0.05cm} \vert \vert \hspace{0.05cm} Q_X^{ (A) } )$,
- $D(P_X^{ (B) } \hspace{0.05cm} \vert \vert \hspace{0.05cm} Q_X^{ (B) } )$,
- $D(P_X^{ (C) } \hspace{0.05cm} \vert \vert \hspace{0.05cm} Q_X^{ (C) } )$.
- Finally, subtask (5) asks for the conditions that must be satisfied for the equal sign to be true in the above inequality.
Hints:
- The exercise belongs to the chapter Some preliminary remarks on two-dimensional random variables.
- In particular, reference is made to the page Relative entropy – Kullback-Leibler distance.
- The two probability functions can be read from the above graph as follows:
- $$P_X(X) = \big [1/4 , \ 1/2 , \ 1/4 \big ],\hspace{0.5cm} Q_X(X) = \big [1/8, \ 3/4, \ 1/8 \big].$$
Questions
Solution
(1) For the Kullback-Leibler distance of the non-partitioned quantities $X$ and $Y$ holds:
- $$D(P_X \hspace{0.05cm} || \hspace{0.05cm}P_Y) = {\rm E} \left [ {\rm log}_2 \hspace{0.1cm} \frac{P_X(X)}{P_Y(X)}\right ] \hspace{0.2cm}=\hspace{0.2cm} \sum_{x \hspace{0.05cm}\in \hspace{0.05cm}X} P_X(x) \cdot {\rm log}_2 \hspace{0.1cm} \frac{P_X(x)}{P_Y(x)}$$
- $$\Rightarrow D(P_X \hspace{0.05cm} || \hspace{0.05cm}P_Y) = \hspace{-0.15cm} \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/2}{3/4} + 2 \cdot \frac{1}{4}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/4}{1/8} = \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{2}{3} + \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} (2) = 1- \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} (3) \hspace{0.15cm} \underline {=0.2075\,{\rm (bit)}} \hspace{0.05cm}.$$
(2) With $\text{partition }A$ ⇒ $A_1 = \{0\}$ , $A_2 = \{ 1 , 2 \}$ we get $P_X^{ (A) } (X) = \{1/4 , \ 3/4\}$ and $Q_X^{ (A) } (X) = \{1/8 , \ 7/8\}$. From this follows:
- $$D(P_X^{\hspace{0.15cm}(A)} \hspace{0.05cm}|| \hspace{0.05cm} Q_X^{\hspace{0.15cm}(A)}) = \frac{1}{4}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/4}{1/8} + \frac{3}{4}\cdot {\rm log}_2 \hspace{0.1cm} \frac{3/4}{7/8} =\frac{1}{4}\cdot {\rm log}_2 \hspace{0.1cm} (2) + \frac{3}{4}\cdot {\rm log}_2 \hspace{0.1cm} \frac{6}{7} \hspace{0.15cm} \underline {=0.0832\,{\rm (bit)}} \hspace{0.05cm}.$$
(3) With $\text{partition } B$ ⇒ $B_1 = \{1\}$ , $B_2 = \{ 0 ,\ 2 \}$ the probability functions are $P_X^{ (B) } (X) = \{1/2 , \ 1/2\}$ und $Q_X^{ (B) } (X) = \{3/4 , \ 1/4\}$.
- Analogous to subtask (2) one thus obtains:
- $$D(P_X^{\hspace{0.15cm}(B)} \hspace{0.05cm}|| \hspace{0.05cm} Q_X^{\hspace{0.15cm}(B)}) = \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/2}{3/4} + \frac{1}{2}\cdot {\rm log}_2 \hspace{0.1cm} \frac{1/2}{1/4} \hspace{0.15cm} \underline {=0.2075\,{\rm (bit)}} \hspace{0.05cm}.$$
- The result agrees with that of subtask (1) ⇒ With $\text{partition }B$ the equal sign applies.
(4) With $\text{partition } C$ ⇒ $C_1 = \{2\}$ , $C_2 = \{ 0 , \ 1\}$ one obtains $P_X^{ (C) } (X) = \{1/4, \ 3/4\}$ , $Q_X^{ (C) } (X) = \{1/8, \ 7/8\}$,
i.e. the same functions as for the $\text{partition }A$ ⇒ solution proposal 1.
(5) The $\text{partition }B$ has led to the result $D(P_X^{ (B) } \hspace{0.05cm} || \hspace{0.05cm}Q_X^{ (B) } ) = D(P_X \hspace{0.05cm} || \hspace{0.05cm}Q_X)$.
- So for this case
- $$\frac{P_X(1)}{Q_X(1)} = \frac{1/2}{3/4} = \frac{2}{3}, \ \frac{P_X(B_1)}{Q_X(B_1)} = \frac{1/2}{3/4} = {2}/{3},$$
- $$\frac{P_X(0)}{Q_X(0)} = \frac{1/4}{1/8} = 2, \ \frac{P_X(B_2)}{Q_X(B_2)} = \frac{1/2}{1/4} = 2,$$
- $$\frac{P_X(2)}{Q_X(2)} = \frac{1/4}{1/8} = 2, \ \frac{P_X(B_2)}{Q_X(B_2)} = \frac{1/2}{1/4} = 2.$$
- It must therefore hold for all $x \in X$ :
- $$\frac{P_X(x)}{Q_X(x)} = \frac{P_X(B_1)}{Q_X(B_1)}, \text{ if } x \in B_1, \hspace{0.5cm}\frac{P_X(x)}{Q_X(x)} = \frac{P_X(B_2)}{Q_X(B_2)}, \text{ if } x \in B_2.$$
- By generalisation, one can see that both proposed solutions are correct.
