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Difference between revisions of "Euler's Totient Theorem Problem 2 Solution"

(Solution)
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We now just need to find the last two digits of <math>3^27</math>. Using the [[Chinese Remainder Theorem]], we find that the last two digits are <math>3\pmod{4}</math> and <math>12\pmod{25}</math>. We guess and check to get <math>\boxed{87}</math>.
 
We now just need to find the last two digits of <math>3^27</math>. Using the [[Chinese Remainder Theorem]], we find that the last two digits are <math>3\pmod{4}</math> and <math>12\pmod{25}</math>. We guess and check to get <math>\boxed{87}</math>.
 
~BorealBear
 
~BorealBear
 +
 +
Link back to [[Euler's Totient Theorem]].

Revision as of 17:42, 21 March 2023

Problem

(BorealBear) Find the last two digits of $3^{3^{3^{3}}}$.

Solution

Finding the last two digits is equivalent to finding $3^{3^{3^{3}}}\pmod{100}$. We can start by expanding the uppermost exponent: $3^{3^{27}}$. Then, since $\phi(100)=40$, the exponent is equal to $3^{27}\pmod{40}$. We see that $3^4=81\equiv1\pmod{40}$, so it simplifies to $3^3=27\pmod{40}$.

We now just need to find the last two digits of $3^27$. Using the Chinese Remainder Theorem, we find that the last two digits are $3\pmod{4}$ and $12\pmod{25}$. We guess and check to get $\boxed{87}$. ~BorealBear

Link back to Euler's Totient Theorem.

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