HDU 2859—Phalanx(DP)
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Time Limit:5000MS Memory Limit:32768KB 64bit IO Format:%I64d & %I64u
Description
Today is army day, but the servicemen are busy with the phalanx for the celebration of the 60th anniversary of the PRC.
A phalanx is a matrix of size n*n, each element is a character (a~z or A~Z), standing for the military branch of the servicemen on that position.
For some special requirement it has to find out the size of the max symmetrical sub-array. And with no doubt, the Central Military Committee gave this task to ALPCs.
A symmetrical matrix is such a matrix that it is symmetrical by the “left-down to right-up” line. The element on the corresponding place should be the same. For example, here is a 3*3 symmetrical matrix:
cbx
cpb
zcc
Input
There are several test cases in the input file. Each case starts with an integer n (0<n<=1000), followed by n lines which has n character. There won’t be any blank spaces between characters or the end of line. The input file is ended with a 0.
Output
Each test case output one line, the size of the maximum symmetrical sub- matrix.
Sample Input
3 abx cyb zca 4 zaba cbab abbc cacq 0
Sample Output
3 3
大意:
给定一个矩阵,求最大对称矩阵
思路:
一开始怎么想也觉得不会有状态转移的情况,即使有也会复杂度过高
后来看了题解才想通,其实和我一开始的想的有些相似,因为给的时间比较长,n^3的复杂度也会死可以接受的
试想一个n阶的对称阵如何变成n+1的对称阵?
在它的两个底边追加对称的元素即可,对角线元素添加任意元素即可
于是,我们从一个点向他的上与右边推进,直至不匹配
将匹配的个数与dp[i-1][j+1]比较,
如果匹配量大于右上角记录下来的矩阵大小,就是右上角的数值+1,否则就是这个匹配量。
代码:
#include<bits/stdc++.h> using namespace std; const int MAXN=1300; char m[MAXN][MAXN]; int dp[MAXN][MAXN]; int main() { //freopen("data.in","r",stdin); int n; while(~scanf("%d",&n)&&n){ getchar(); for(int i=0;i<n;i++){ for(int j=0;j<n;j++){ scanf("%c",&m[i][j]); } getchar(); } // for(int i=0;i<n;i++){ // for(int j=0;j<n;j++){ // cout<<m[i][j]; // } // } // cout<<endl; memset(dp,0,sizeof(dp)); int res=1; for(int i=0;i<n;i++){ for(int j=n-1;j>=0;j--){ //cout<<i<<"\t"<<j<<"\t"; //cout<<1111111<<endl; if(i==0||j==n-1){ dp[i][j]=1; //cout<<"is "<<dp[i][j]<<endl; continue; } int x=i,y=j; while(x>=0&&y<=n-1&&m[x][j]==m[i][y]){ x--; y++; } y=y-j; if(y>dp[i-1][j+1]){ dp[i][j]=dp[i-1][j+1]+1; } else{ dp[i][j]=y; } //cout<<"is "<<dp[i][j]<<endl; res=max(res,dp[i][j]); } } printf("%d\n",res); } }
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