Description
With a n*n chart, we fill some of these squares with positive integers,
And the other squares are put in 0.
Someone from the top left corner of the picture, you can go down, or to the right, until you reach the lower right corner.
On the way, he took away the number of squares. (The number in the box becomes 0 when taken away)
This person from the upper left to the lower right corner of a total of 3 times, try to find out 3 paths, so that the sum of the maximum number of obtained.
formatInput Format
First line: N (4<=n<=20)
Next to a n*n matrix, each element in the matrix is not more than 80, not less than 0
output Format
A row that represents the maximum sum.
Example 1sample input 1[copy]
41 2 3 42 1 3 41 2 3 41 3 2 4
sample Output 1[copy]
39
Limit
Each test point 1s
Tips
Multi-Process DP
F[STEP][X1][X2][X3] indicates that the optimal solution of the three points is taken x1,x2,x3 when the step is reached.
Because only move down or to the right, so when moving the number of steps, you can move to the grid is a diagonal, so the enumeration three times moved to the horizontal axis, you can O (1) to calculate the ordinate, note that each square can only be taken once.
1#include <iostream>2#include <cstdio>3#include <cstdlib>4#include <cstring>5#include <cmath>6#include <algorithm>7 using namespacestd;8 Const intmaxn= -;9 intf[maxn*2][MAXN][MAXN][MAXN];Ten intMAP[MAXN][MAXN]; One intN; A intMain () { - -scanf"%d",&N); the for(intI=1; i<=n;i++){ - for(intj=1; j<=n;j++){ -scanf"%d",&map[i][j]); - } + } -f[1][1][1][1]=map[1][1]; + for(intstep=2; step<=2*n-1; step++) {//The number of steps, assuming that it took one step to go A for(intX1=max (1, step-n+1); X1<=min (n,step); x1++) {//x1,x2,x3 is to use step to walk to the horizontal axis of the x1,x2,x3 square, at for(intX2=max (1, step-n+1); X2<=min (n,step); x2++) {//with min (), Max () is a way to keep the squares from crossing - for(intX3=max (1, step-n+1); X3<=min (n,step); x3++){ - intdelta=map[x1][step-x1+1]+map[x2][step-x2+1]+map[x3][step-x3+1]; - if(X1==X2) delta-=map[x1][step-x1+1]; - if(X1==X3) delta-=map[x1][step-x1+1]; - if(X2==X3) delta-=map[x2][step-x2+1]; in if(X1==X2&&X1==X3) delta+=map[x1][step-x1+1];//minus one more time. - toF[step][x1][x2][x3]=max (f[step-1][x1][x2][x3],max (f[step-1][x1-1][x2][x3], +Max (f[step-1][x1][x2-1][x3],max (f[step-1][x1][x2][x3-1], -Max (f[step-1][x1-1][x2-1][x3],max (f[step-1][x1-1][x2][x3-1], theMax (f[step-1][x1][x2-1][x3-1],f[step-1][x1-1][x2-1][x3-1])))))))+Delta; * $ Panax Notoginseng } - } the } + } Acout<<f[2*n-1][n][n][n]; the return 0; +}
Number of three Squares