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вернуться в форумAm I true? We can assume m=k*n+x. So m^e mod n = c <->(k*n+x)^e mod n = c <-> x^e mod n = c => We can find m in [1, n] : m^e mod n = c => My algorithm run in O(nlogn). Is it fast enough? (because it TLE on test#1) Explain me! Re: Am I true? I don't think it's fast enough. |
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