This is Chris's solution:

Following the hint, keep in mind that the equations for series resistances and parallel resistances are: $R=R_1+R_2$ for series and $R=(R_1\times R_2)/(R_1+R_2)$ for parallel.

The resistance $R$ between A and B is the equivalent of a resistance of 1 ohm in parallel with two resistances of 1 ohm and a resistance R in series and we can write the following equation:

${\displaystyle R=\frac{1\times (2+R)}{1+(2+R)}=\frac{(2+R)}{(3+R)}.}$

Reworking the above equation we get: $R(3+R)=(2+R)$ or

${\displaystyle R^2+2R-2=0.}$

Solving the quadratic equation we get two solutions, one of which we cannot use because it is negative, so $R=-2.73205$ is not valid because a resistance cannot have a negative value. The correct solution is:

${\displaystyle R=\sqrt{3}-1\approx 0.732051.}$

This is Aleksander's solution:

Generally it is easier to calculate the resistance of a circuit when you present it in a way that one end of circuit (here A) is on the left and the other is on the right. Here we have an illustration of our ladder circuit in such a way making it much easier to justify whether two resistors are in parallel or in series.:

We can observe that the pattern for the first three resistors repeats for the rest so

${\displaystyle R=\frac{1}{\frac{1}{R_3}+\frac{1}{R_1+R_2+\frac{1}{\frac{1}{R_6}+\frac{1}{R_4+R_5+...}}}}}$

and the fraction grows like that to infinity. As all the resistances are 1 ohm this gives the continued fraction:

${\displaystyle R=\frac{1}{1+\frac{1}{2+\frac{1}{1+\frac{1}{2+...}}}}=\frac{1}{1+\frac{1}{2+R}}}$

After a few simplifications we obtain the quadratic equation : $R^2+2R-2=0.$ As $R$ must be positive the solution is $R=\sqrt{3}-1$ ohms.

This is Andrei's solution:

First I shall prove that the resistance from A to B tends to a limit as more 'squares' are added to the network. I shall denote the value of each resistance by $R$ and the values of the equivalent resistances between A and B, corresponding to different number of resistance 'squares', by $R_0,R_1,R_2,...$ etc. Evidently $R_0=R$ and $R_1=3R/4$.

From the diagram I observe that:

${\displaystyle \frac{1}{R_n}=\frac{1}{R}+\frac{1}{2R+R_{n-1}}.}$

where $R=1$. I observe that $R_1<R_0$, and I shall prove by induction that $R_n<R_{n-1}$. This, by the recurrence relation, is equivalent to:

${\displaystyle R_n<R_{n-1}\iff \frac{1}{R_n}>\frac{1}{R_{n-1}}\iff \frac{1}{R}+\frac{1}{2R+R_{n-1}}>\frac{1}{R}+\frac{1}{2R+R_{n-2}}\iff R_{n-1}<R_{n-2}.}$

So, the sequence $(\mathrm{Rn})$ is strictly decreasing. Evidently $R_n>0$ so the sequence $(R_n)$ is convergent. By considering the limit in the recurrence relation (putting $R=1$),

${\displaystyle \underset{n\to \infty }{lim}{R}_n=\frac{1}{1+\frac{1}{2+\underset{n\to \infty }{lim}{R}_{n-1}}}}$

where

${\displaystyle \underset{n\to \infty }{lim}{R}_n=\underset{n\to \infty }{lim}{R}_{n-1}=R_L.}$

This gives $R_L=\frac{2+R_L}{3+R_L}$ and hence the quadratic equation $R_L^2+2R_L-2=0$. The positive solution of this equation gives the resistance of the network: $\sqrt{3}-1$ ohms.