top | item 13474789 (no title) siegelzero | 9 years ago Yeah, this proof seems to work. I was thinking of the case where you attack $e^2$ directly, instead of going after both $e$ and $e^{-1}$. discuss order hn newest pmalynin|9 years ago It can be shown by clever application of Taylor Expansion that e^2 is irrational.
pmalynin|9 years ago It can be shown by clever application of Taylor Expansion that e^2 is irrational.
pmalynin|9 years ago