小朋友排在一排分糖果。每个小朋友至少有一个糖果,但是每个小朋友有个排名,排名高的小朋友比“邻居”的糖果要多。
问至少多少个糖果?
顺序模拟,假设第一个小朋友拿一个,如果后面的小朋友比他排名低,显然后面的小朋友拿后一个,前一个小朋友升一个。可以考虑到,需要记录,每个小朋友前面有多少个比他“连续一直”排名高的。
如果后面的小朋友排名比他高,后面的小朋友比前一个小朋友多拿一个,依次模拟即可。但是Wrong Answer了很多次T_T.
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class Solution {
public:
int candy(vector<int> &ratings) {
int len = ratings.size();
if(len == 0 || len == 1)return len;
vector<int>bigger(ratings.size(),0);
int count = 1;
int now = 1;
int max = 0;
int i;
for(i = 1;i < ratings.size();i++) {
if(ratings[i] > ratings[i-1]) {
if(max != 0) {
if(bigger[i-1] < max-1) {
count += max-1 - bigger[i-1];
}
}
max = 0;
bigger[i] = 0;
now += 1;
count += now;
}
else
if(ratings[i] < ratings[i-1]) {
bigger[i] = bigger[i-1] + 1;
if(now == 1) {
count += bigger[i] + now;
}
else {
max = now;
now = 1;
count += bigger[i] + now - (max-1);
}
}
else {
if(max != 0) {
if(bigger[i-1] < max-1) {
count += max-1 - bigger[i-1];
}
}
max = 0;
bigger[i] = 0;
now = 1;
count += 1;
}
}
if(max != 0) {
if(bigger[i-1] < max-1) {
count += max-1 - bigger[i-1];
}
}
return count;
}
};
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