Given a triangle, find the minimum path sum from top to bottom. Each step you may move to adjacent numbers on the row below.
For example, given the following triangle
[
[2],
[3,4],
[6,5,7],
[4,1,8,3]
]
The minimum path sum from top to bottom is 11 (i.e., 2 + 3 + 5 + 1 = 11).
Note:
Bonus point if you are able to do this using only O(n) extra space, where n is the total number of rows in the triangle.
解题思路:使用动态规划法。当我们计算第i层的数到底层的最小和时,如果我们知道第i+1层的数到底层最小的和就好算了。即minsum[i][j]=triangle[i]+min( minsum[i+1][j] , minsum[i+1][j+1] );从底层向顶层逐层计算,就能得到最终结果。
本文使用大小为n的数组d记录每一层的结果,达到了O(n)的空间复杂度要求。
class Solution {
public:
int minimumTotal(vector<vector<int> > &triangle) {
int s = triangle.size();
if(s != (triangle[s-1].size()))
return -1;
if(s==1)
return triangle[0][0];
int *d = new int[s];
int i,j;
for(i=0;i<s;i++)
d[i]=triangle[s-1][i];
for(i=s-2;i>=0;i--)
{
for(j=0;j<=i;j++)
{
d[j]=triangle[i][j]+min(d[j],d[j+1]);
}
}
return d[0];
}
};