POJ 1068,题目链接http://poj.org/problem?id=1068
对于给出给出的原括号串S,对应两种数字密码串P、W:
S (((()()()))) P-sequence 4 5 6666 (Pi表示第i个右括号前面有多少个左括号) W-sequence 1 1 1456 (Wi表示第i个右括号对应它前面的第几个左括号)
要求给出P串,求W。
1. 模拟类题型。将输入的P串先装换为S串,再由S串得到W串。
2. 左右括号可以用true和false表示。
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//356K 0MS#include <cstdio>#define LEFT true#define RIGHT falsebool
s_data[40];//最多20个括号int main(){ int
caseNum, oneCount; int
temp, last; scanf("%d", &caseNum); do { scanf("%d", &oneCount); int
S_Len = 0; //parenthesesNum * 2 //1. get P-string , and convert to S scanf("%d", &temp);//P - first for
(int i=0; i<temp; ++i) s_data[S_Len++] = LEFT; s_data[S_Len++] = RIGHT; //P second -- count for
(int i=1; i<oneCount; ++i) { last = temp; scanf("%d", &temp); for
(int idx=0; idx<temp-last; ++idx) s_data[S_Len++] = LEFT; s_data[S_Len++] = RIGHT; } //2. convet S to W-string int
pPos = 0; for
(int idx=0; idx < S_Len; ++idx) { if
(s_data[idx] == RIGHT) { int
val=1, ret=1; pPos = idx; while(pPos-- > 0) { if
(s_data[pPos] == RIGHT){ ++val; ++ret; }else
{ --val; if
(val == 0){ //匹配成功 printf("%d ", ret); break; } } } } } printf("\n"); } while
(--caseNum); return
0;} |
poj1068解题报告(模拟类),布布扣,bubuko.com
原文:http://www.cnblogs.com/songcf/p/3763653.html