这道题卡了很久,开始没读清楚题,没看到题目中给的6个组合是仅可能的组合,一直自己想有多少种组合方式。后来才发现,于是就想到写遍历。我想的是,这六种情况下,每个位置摆哪个矩形是不确定的,于是可以对方块的排列方法遍历,对每个方块是横放还是竖放遍历。写了一个9层的循环,效率很低,有非常多的重复。不过通过了。
#include <stdio.h>
#include <stdlib.h>
#include <math.h> typedef struct
{
int x;
int y;
}RECTANGLE; typedef struct
{
RECTANGLE r[];
}RECRotate; int cmp(const void *a1, const void *a2)
{
return ((RECTANGLE *)a1)->x - ((RECTANGLE *)a2)->x;
} int max(int a, int b)
{
return a > b ? a : b;
}
int min(int a, int b)
{
return a < b ? a : b;
} int assem(int c, RECTANGLE r1, RECTANGLE r2, RECTANGLE r3, RECTANGLE r4, RECTANGLE *out)
{
switch(c)
{
case :
out->x = r1.x + r2.x + r3.x + r4.x;
out->y = max(r4.y, max(r3.y, max(r1.y, r2.y)));
break;
case :
out->x = max(r4.y, r1.x + r2.x + r3.x);
out->y = max(r3.y, max(r1.y, r2.y)) + r4.x;
break;
case :
out->x = max(r1.x + r2.x + r3.x, r3.x + r4.y);
out->y = max(r1.y + r4.x, max(r3.y, r2.y + r4.x));
break;
case : //basic 4 and basic 5 have the same area
out->x = max(r2.x, r3.x) + r1.x +r4.x;
out->y = max(r2.y + r3.y, max(r1.y, r4.y));
break;
case :
if(r3.y >= r4.y)
{
out->x = max(r2.y + r3.x, max(r3.x + r4.x, r1.x + r2.y));
out->y = max(r1.y + r3.y, r2.x + r4.y);
}
break;
default:
break;
}
return ;
} int isfirst(RECTANGLE *outr, int num, RECTANGLE tmp) //判断答案是否第一次出现 因为计算有冗余 可能有相同答案出现多次
{
int i;
for(i = ; i < num; i++)
{
if(tmp.x == outr[i].x || tmp.y == outr[i].x)
{
return ;
}
}
return ;
}
int main()
{
FILE *in, *out;
RECRotate recin[]; //原始输入矩阵
RECTANGLE outr[]; int i, j[], k[];
in = fopen("packrec.in", "r");
out = fopen("packrec.out", "w"); for(i = ; i < ; i++)
{
fscanf(in, "%d %d", &recin[i].r[].x, &recin[i].r[].y);
recin[i].r[].x = recin[i].r[].y;
recin[i].r[].y = recin[i].r[].x;
} RECTANGLE R1;
RECTANGLE R2;
RECTANGLE R3;
RECTANGLE R4;
RECTANGLE OUTTMP;
int minarea = ;
int outnum = ;
for(j[] = ; j[] < ; j[]++) //对每个位置采用第几个方块遍历
{
for(j[] = ; j[] < ; j[]++)
{
if(j[] == j[]) continue;
for(j[] = ; j[] < ; j[]++)
{
if(j[] == j[] || j[] == j[]) continue;
for(j[] = ; j[] < ; j[]++)
{
if(j[] == j[] || j[] == j[] || j[] == j[]) continue;
for(k[] = ; k[] < ; k[]++)
{
for(k[] = ; k[] < ; k[]++) //对每个方块采用横放竖放遍历
{
for(k[] = ; k[] < ; k[]++)
{
for(k[] = ; k[] < ; k[]++)
{
R1 = recin[j[]].r[k[]];
R2 = recin[j[]].r[k[]];
R3 = recin[j[]].r[k[]];
R4 = recin[j[]].r[k[]];
for(i = ; i < ; i++) //对6种情况遍历
{
assem(i, R1, R2, R3, R4, &OUTTMP);
if(OUTTMP.x * OUTTMP.y < minarea)
{
minarea = OUTTMP.x * OUTTMP.y;
outnum = ;
outr[outnum - ] = OUTTMP;
}
else if(OUTTMP.x * OUTTMP.y == minarea && isfirst(outr, outnum, OUTTMP))
{
outnum++;
outr[outnum - ] = OUTTMP;
}
}
}
}
}
}
}
}
}
}
for(i = ; i < outnum; i++) //令短边长在前
{
if(outr[i].x > outr[i].y)
{
int tmp = outr[i].x;
outr[i].x = outr[i].y;
outr[i].y = tmp;
}
}
qsort(outr, outnum, sizeof(outr[]), cmp); //按照短边长从小到大输出 fprintf(out, "%d\n", minarea);
for(i = ; i < outnum; i++)
{
fprintf(out, "%d %d\n", outr[i].x, outr[i].y);
} return ;
}