backfind

摘要： \(\epsilon=\mu(k) \ast 1\) \(id=\varphi \ast 1\) \(\gcd(i,j)=\sum_{k|i,k|j}\varphi(k)\) \([\gcd(i,j)=1]=\sum_{d|\gcd(i,j)}\mu(k)\) \(d(i \cdot j)=\sum 阅读全文