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How to prove $\sqrt3$ is irrational using Fermat's infinite descent method?

Like says in Carl Benjamim Boyer's book.

Isnt the same prove to $\sqrt2$, in Boyer's book says something like this.

$\sqrt3=a1/b1$

$1/(\sqrt3-1)=(\sqrt3+1)/2$

$\sqrt3=(3b1-a1)/(a1-b1)$

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    Quite similarly to this answer: http://math.stackexchange.com/questions/5/how-can-you-prove-that-the-square-root-of-two-is-irrational/16#162011-10-09
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    Exactly the same way you prove it for $\sqrt{2}$: write $\sqrt{3}=\frac{a}{b}$, or $b\sqrt{3}=a$. Square both sides, conclude you can find $a'$, $b'$, $a'\lt a$, $b'\lt b$ with $\frac{a'}{b'} = \frac{a}{b}$.2011-10-09

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