TOJ-1307 Crashing Balloon
Posted DGSX
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Inevitably, though, disputes arise, and so the official winner is not determined until the disputes are resolved. The player who claims the lower score is entitled to challenge his/her opponent‘s score. The player with the lower score is presumed to have told the truth, because if he/she were to lie about his/her score, he/she would surely come up with a bigger better lie. The challenge is upheld if the player with the higher score has a score that cannot be achieved with balloons not crashed by the challenging player. So, if the challenge is successful, the player claiming the lower score wins.
So, for example, if one player claims 343 points and the other claims 49, then clearly the first player is lying; the only way to score 343 is by crashing balloons labeled 7 and 49, and the only way to score 49 is by crashing a balloon labeled 49. Since each of two scores requires crashing the balloon labeled 49, the one claiming 343 points is presumed to be lying.
On the other hand, if one player claims 162 points and the other claims 81, it is possible for both to be telling the truth (e.g. one crashes balloons 2, 3 and 27, while the other crashes balloon 81), so the challenge would not be upheld.
By the way, if the challenger made a mistake on calculating his/her score, then the challenge would not be upheld. For example, if one player claims 10001 points and the other claims 10003, then clearly none of them are telling the truth. In this case, the challenge would not be upheld.
Unfortunately, anyone who is willing to referee a game of crashing balloon is likely to get over-excited in the hot atmosphere that he/she could not reasonably be expected to perform the intricate calculations that refereeing requires. Hence the need for you, sober programmer, to provide a software solution.
Input
Pairs of unequal, positive numbers, with each pair on a single line, that are claimed scores from a game of crashing balloon.Output
Numbers, one to a line, that are the winning scores, assuming that the player with the lower score always challenges the outcome.Sample Input
343 49 3599 610 62 36
Sample Output
49 610 62
Source: South Central USA
1998
给两个数,m>n,若n可被100内的数分解,且m不可被100内其他数分解,输出n,否则输出m。
#include <stdio.h> bool bf,lf; void dfs(int m,int n,int factor){ if(m==1 && n==1){//两个都被完全因式分解 bf = lf = true; return; } if(n==1)//小数被分解完,大数还未被分解完 lf = true; while(factor>1){ if(m%factor==0) dfs(m/factor,n,factor-1); if(n%factor==0) dfs(m,n/factor,factor-1); factor--; } } int main(){ int m,n; while(~scanf("%d%d",&m,&n)){ if(m<n){ int t = m; m = n; n = t; } bf = lf = false; dfs(m,n,100); if(!bf && lf) printf("%d\n",n); else printf("%d\n",m); } return 0; }
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