Euler Phi Function of 1365
Jump to navigation
Jump to search
Example of Euler $\phi$ Function of Square-Free Integer
- $\map \phi {1365} = 576$
where $\phi$ denotes the Euler $\phi$ Function.
Proof
From Euler Phi Function of Square-Free Integer:
- $\ds \map \phi n = \prod_{\substack {p \mathop \divides n \\ p \mathop > 2} } \paren {p - 1}$
where $p \divides n$ denotes the primes which divide $n$.
We have that:
- $1365 = 3 \times 5 \times 7 \times 13$
and so is square-free.
Thus:
| \(\ds \map \phi {1365}\) | \(=\) | \(\ds \paren {3 - 1} \paren {5 - 1} \paren {7 - 1} \paren {13 - 1}\) | ||||||||||||
| \(\ds \) | \(=\) | \(\ds 2 \times 4 \times 6 \times 12\) | ||||||||||||
| \(\ds \) | \(=\) | \(\ds 576\) |
$\blacksquare$