2^X mod n = 1

Source: Internet
Author: User

Time limit:2000/1000 MS (java/others) Memory limit:65536/32768 K (java/others) Total Submission (s): 14494 Accepted Submission (s): 4484


Problem descriptiongive a number n, find the minimum x (x>0) that satisfies 2^x mod n = 1.

Inputone positive integer on each line, the value of N.

Outputif the minimum x exists, print a line with 2^x mod n = 1.

Print 2^? MoD n = 1 otherwise.

You should replace x and n with specific numbers.

Sample Input
25

Sample Output
2^? MoD 2 = 12^4 MoD 5 = 1


#include <stdio.h>int main () {int n;while (scanf ("%d", &n)!=eof) {if (n==1| | n%2==0)//n is 1 of the situation without consideration, n is an even number of cases not considered. {printf ("2^? MoD%d = 1\n ", n); continue;} int W=2,j=1;while (w!=1) {j++;w*=2;w%=n;//has just started missing this step resulting in a commit timeout}      printf ("2^%d mod%d = 1\n", j,n);} return 0;}



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2^X mod n = 1

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