Difference between revisions of "Aufgaben:Exercise 2.3: Algebraic Sum of Binary Numbers"

$$y_{\nu}\in\{0,1,\ \text{...} \ ,6\}\hspace{0.3cm}\Rightarrow\hspace{0.3cm} y_{\rm max} \hspace{0.15cm} \underline{= 6}.$$

(2)  There is a binomial distribution.  Therefore,  with  $p = 0.25$:

$${\rm Pr}(y =0)=(1-p)^{\it I}=0.75^6=0.178,$$

$${\rm Pr}(y=1)=\left({ I \atop {1}}\right)\cdot (1-p)^{I-1}\cdot p= \rm 6\cdot 0.75^5\cdot 0.25=0.356,$$

$${\rm Pr}(y=2)=\left({ I \atop { 2}}\right)\cdot (1-p)^{I-2}\cdot p^{\rm 2}= \rm 15\cdot 0.75^4\cdot 0.25^2=0.297,$$

$$\Rightarrow \hspace{0.3cm}{\rm Pr}(y>2)=1-{\rm Pr}(y=0)-{\rm Pr}( y=1)-{\rm Pr}( y=2)\hspace{0.15cm} \underline{=\rm 0.169}.$$

(3)  According to the general equation,  the mean of the binomial distribution is:

$$m_y= I\cdot p\hspace{0.15cm} \underline{=\rm 1.5}.$$

(4)  Accordingly,  for the rms value of the binomial distribution:

$$\sigma_y=\sqrt{ I \cdot p \cdot( 1- p)} \hspace{0.15cm} \underline{= \rm 1.061}.$$

(5)  Correct is the  proposed solution 2:

• If   $y_\nu = 0$, then only the values  $0$  and  $1$  can follow at the next time point,  but not  $2$, ... , $6$.
• That is:   The sequence  $ \langle y_\nu \rangle$  has (strong) statistical bindings.

(6)  The probability we are looking for is identical to the probability that the new binary symbol is equal to the symbol dropped out of the shift register.  It follows that:

$${\rm Pr} (y_{\nu} = \mu\hspace{0.05cm}| \hspace{0.05cm} y_{\nu-{1}} = \mu) = {\rm Pr}(x_{\nu}= x_{\nu-6}). $$

• Since the symbols  $x_\nu$  are statistically independent of each other,  we can also write for this:

$${\rm Pr}(x_{\nu} = x_{\nu-6}) = {\rm Pr}\big[(x_{\nu}= 1)\hspace{0.05cm}\cap\hspace{0.05cm}(x_{\nu-6}= 1)\hspace{0.05cm}\cup \hspace{0.05cm}(x_\nu=0)\hspace{0.05cm}\cap\hspace{0.05cm}(x_{\nu-6} =0)\big]= p^{2}+(1- p)^{2}=\rm 0.25^2 + 0.75^2\hspace{0.15cm} \underline{ = 0.625}. $$