Channel polarization

Synthetic channels

Binary erasure channel

Let ${\displaystyle \epsilon }$ be the erasure probability of a binary erasure channel (BEC).

	00	0?	01	?0	??	?1	10	1?	11
00	${\displaystyle (1-\epsilon )^{2}}$	${\displaystyle \epsilon (1-\epsilon )}$		${\displaystyle \epsilon (1-\epsilon )}$	${\displaystyle \epsilon ^{2}}$
01					${\displaystyle \epsilon ^{2}}$	${\displaystyle \epsilon (1-\epsilon )}$		${\displaystyle \epsilon (1-\epsilon )}$	${\displaystyle (1-\epsilon )^{2}}$
10				${\displaystyle \epsilon (1-\epsilon )}$	${\displaystyle \epsilon ^{2}}$		${\displaystyle (1-\epsilon )^{2}}$	${\displaystyle \epsilon (1-\epsilon )}$
11		${\displaystyle \epsilon (1-\epsilon )}$	${\displaystyle (1-\epsilon )^{2}}$		${\displaystyle \epsilon ^{2}}$	${\displaystyle \epsilon (1-\epsilon )}$

	00	0?	01	?0	??	?1	10	1?	11
0	${\displaystyle 0.5(1-\epsilon )^{2}}$	${\displaystyle 0.5\epsilon (1-\epsilon )}$		${\displaystyle 0.5\epsilon (1-\epsilon )}$	${\displaystyle \epsilon ^{2}}$	${\displaystyle 0.5\epsilon (1-\epsilon )}$		${\displaystyle 0.5\epsilon (1-\epsilon )}$	${\displaystyle 0.5(1-\epsilon )^{2}}$
1		${\displaystyle 0.5\epsilon (1-\epsilon )}$	${\displaystyle 0.5(1-\epsilon )^{2}}$	${\displaystyle 0.5\epsilon (1-\epsilon )}$	${\displaystyle \epsilon ^{2}}$	${\displaystyle 0.5\epsilon (1-\epsilon )}$	${\displaystyle 0.5(1-\epsilon )^{2}}$	${\displaystyle 0.5\epsilon (1-\epsilon )}$

Binary symmetric channel

Let ${\displaystyle p}$ be the crossover probability of a binary symmetric channel (BSC).

	00	01	10	11
00	${\displaystyle (1-p)^{2}}$	${\displaystyle p(1-p)}$	${\displaystyle p(1-p)}$	${\displaystyle p^{2}}$
01	${\displaystyle p^{2}}$	${\displaystyle p(1-p)}$	${\displaystyle p(1-p)}$	${\displaystyle (1-p)^{2}}$
10	${\displaystyle p(1-p)}$	${\displaystyle p^{2}}$	${\displaystyle (1-p)^{2}}$	${\displaystyle p(1-p)}$
11	${\displaystyle p(1-p)}$	${\displaystyle (1-p)^{2}}$	${\displaystyle 1-p^{2}}$	${\displaystyle p(1-p)}$

	00	01	10	11
00	${\displaystyle 0.5(1-2p+2p^{2})}$	${\displaystyle p(1-p)}$	${\displaystyle p(1-p)}$	${\displaystyle 0.5(1-2p+2p^{2})}$
01	${\displaystyle p(1-p)}$	${\displaystyle 0.5(1-2p+2p^{2})}$	${\displaystyle 0.5(1-2p+2p^{2})}$	${\displaystyle p(1-p)}$

It turns out that the channel ${\displaystyle W^{-}:U_{1}\rightarrow (Y_{1},Y_{2})}$ reduces to another BSC. To see this, consider the case where ${\displaystyle (Y_{1},Y_{2})=(0,0)}$. To minimize the error probability, we must decide the value of ${\displaystyle U_{1}}$ that has the greater likelihood. For ${\displaystyle 0<p<0.5}$, ${\displaystyle 0.5(1-2p+2p^{2})>p(1-p)}$ so that the maximum-likelihood (ML) decision is ${\displaystyle U_{1}=0}$. Using the same argument, we see that the ML decision is ${\displaystyle U_{1}=0}$ for ${\displaystyle (Y_{1},Y_{2})=(1,1)}$. More generally, the receiver decision is to set ${\displaystyle {\hat {U_{1}}}=Y_{1}\oplus Y_{2}}$. Indeed, if the crossover probability is low, it is very likely that ${\displaystyle Y_{1}=U_{2}\oplus U_{1}}$ and ${\displaystyle Y_{2}=U_{2}}$. Solving for ${\displaystyle U_{2}}$ and plugging it back produces the desired result.

We just saw that despite having a quartenary output alphabet, ${\displaystyle W^{-}}$ is equivalent to a BSC. To get the effective crossover probability of this synthetic channel, we just determine the probability that the ML decision ${\displaystyle {\hat {U_{1}}}}$ is not the same as ${\displaystyle U_{1}}$. This will happen with probability ${\displaystyle 2p(1-p)<math>.Intuitively,<math>W^{-}}$ should have less mutual information compared to the original channel ${\displaystyle W}$ since an independent source ${\displaystyle U_{2}}$ interferes with ${\displaystyle U_{1}}$ on top of the effects of the BSC.

Checkpoint: Show that for ${\displaystyle 0<p<1/2}$, ${\displaystyle p<2p(1-p)}$.

Now, let us consider the other synthetic channel ${\displaystyle W^{+}:<math>U_{2}\rightarrow (U_{1},Y_{1},Y_{2})}$. This synthetic channel has a greater mutual information compared to the original BSC due to the "stolen" information about ${\displaystyle U_{1}}$. As with the previous synthetic channel, we can produce the transition probability matrix from ${\displaystyle U_{2}}$ to <math>(U_1, Y_1, Y_2), which now has an eight-element output alphabet. To facilitate the discussion, the rows of the table below have been grouped according to their entries: