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Re:跳蚤In Reply To:跳蚤 Posted by:czfhhh at 2005-11-10 21:31:28 > 1.易证,可以完成任务的充要条件为n+1个数的最大公约数为1。 > 2.若m为质数,则除了n+1个m的情况外,都可完成任务,即有m^n-1种情况。 > 3.若m为合数,则可能的最大公约数必为m的质因数的倍数。可以算出所有最大公约数的质因数含p的情况有(m/p)^n种。 > 4.设m的质因数为a1,a2,...,aT。则最大公约数不为1的所有情况数为(1<=i1<=T)∑((m/ai1)^n)- (1<=i1<i2<=T)∑((m/(ai1*ai2))^n)+…-(-1)^(T-1)*(1<=i1<i2<…<i(T-1)<=T)∑((m/(ai1*ai2*…*ai(T-1)))^n)-(-1)^T* (1<=i1<i2<…<iT<=T)∑((m/(ai1*ai2*…*aiT))^n)。用m^n减去所有情况数即是可完成任务数。 Orz Followed by: Post your reply here: |
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