WolframAlpha seems to tell me that $e^{e^{e^{e^{e^{e^{e^{e^{e^{e^{e^i}}}}}}}}}} = 1$, see link. Is this just an error or is it for real? Adding one more $e$ to the bottom of the tower gives me the number $e$, so it's specific to the 11 $e$'s I used in the tower.
Iterated exponent of $i$
-
5This happens because with 10 $e$'s you get a number very very close to zero, because with 9 $e$'s you get a number with a very large negative real part, because with 8 $e$'s you get a number whose real part is large and imaginary part is between $\pi/2$ and $3\pi/2$. The trajectory of the iterations is chaotic. – 2012-08-23
1 Answers
You can readily check this using an independent method. Let $x_n + i y_n\in\mathbb{C}$ be the value of a tower of $n$ copies of $e$ with a single $i$ at the top, so that $x_{n+1}+iy_{n+1}=\exp(x_n+iy_n)$. This can be rewritten as $e^{x_n}\left(\cos y_n+i \sin y_n\right)$, giving the recursion $ x_{n+1}=e^{x_n}\cos y_n,\qquad y_{n+1}=e^{x_n}\sin y_n. $ The starting values are $x_0=0$ and $y_0=1$. Evaluating this recursion numerically gives the following table: $ \begin{eqnarray} (x_1,y_1) &=& (0.5403023058681398, &&0.8414709848078965) \\ (x_2,y_2) &=& (1.1438356437916404, &&1.2798830013730222) \\ (x_3,y_3) &=& (0.9002890839010574, &&3.006900083345737) \\ (x_4,y_4) &=& (-2.438030346526128, &&0.3303849520417783) \\ (x_5,y_5) &=& (0.08260952954639851, &&0.028331354522507797) \\ (x_6,y_6) &=& (1.0856817633955023, &&0.030767067267249513) \\ (x_7,y_7) &=& (2.960056578435498, &&0.09110100745978908) \\ (x_8,y_8) &=& (19.21903374615272, &&1.7557331998479278) \\ (x_9,y_9) &=& (-40856897.72613553, &&218399070.28039825) \\ (x_{10},y_{10}) &=& (-0.0, &&-0.0) \\ (x_{11},y_{11}) &=& (1.0, &&-0.0), \end{eqnarray} $ which seems to confirm what Alpha says. However, it should be clear that what's actually happening is that a large negative real part is reached at $n=9$. This produces a numerical zero at $n=10$, followed by $1.0000\ldots$ at $n=11$. While the correct value at $n=11$ is close to $1$, it's not exact. The exact value will differ from $1$ somewhere around the $18$-millionth digit.
-
0@JohnBentin: not exactly the same problem, but might be similar to the pattern you are refering to: http://math.stackexchange.com/questions/125522/number-of-limit-points-of-a-continued-exponential – 2012-09-04