目前我有以下代码:
typedef struct _hexagon {
int *vertice[6];
int *path[6];
int resourceType;
} hexagon;
typedef struct _game {
hexagon hexagons[5][5];
} Game;
主要我有:
Game g;
// This is the line that fails
g.hexagons[0][0].vertice[0] = 0;
这编译得很好,但会产生分段错误。我尝试了很多变化,例如
g.hexagons[0][0].*vertice[0] = 0;
哪个不编译。如何从结构中访问指针的内存?
作为vertice一个array-of-pointes-to-integers,要访问vertice[0],你需要做*g.hexagons[0][0].vertice[0]
示例程序:
#include <stdio.h>
typedef struct _hexagon {
int *vertice[6];
int *path[6];
int resourceType;
} hexagon;
typedef struct _game {
hexagon hexagons[5][5];
} Game;
int main()
{
int i1 = 1;
int i2 = 2;
int i3 = 3;
int i4 = 4;
int i5 = 5;
int i6 = 6;
Game g;
g.hexagons[0][0].vertice[0] = &i1;
g.hexagons[0][0].vertice[1] = &i2;
g.hexagons[0][0].vertice[2] = &i3;
g.hexagons[0][0].vertice[3] = &i4;
g.hexagons[0][0].vertice[4] = &i5;
g.hexagons[0][0].vertice[5] = &i6;
printf("%d \n", *g.hexagons[0][0].vertice[0]);
printf("%d \n", *g.hexagons[0][0].vertice[1]);
printf("%d \n", *g.hexagons[0][0].vertice[2]);
printf("%d \n", *g.hexagons[0][0].vertice[3]);
printf("%d \n", *g.hexagons[0][0].vertice[4]);
printf("%d \n", *g.hexagons[0][0].vertice[5]);
return 0;
}
输出:
$ gcc -Wall -ggdb test.c
$ ./a.out
1
2
3
4
5
6
$
希望能帮助到你!
更新:正如 Luchian Grigore 所指出的
分段错误的原因由下面的小程序解释。简而言之,您正在取消引用 NULL 指针。
#include <stdio.h>
/*
int *ip[3];
+----+----+----+
| | | |
+----+----+----+
| | |
| | +----- points to an int *
| +---------- points to an int *
+--------------- points to an int *
ip[0] = 0;
ip[1] = 0;
ip[2] = 0;
+----+----+----+
| | | |
+----+----+----+
| | |
| | +----- NULL
| +---------- NULL
+--------------- NULL
*ip[0] -> dereferencing a NULL pointer ---> segmantation fault
*/
int main()
{
int * ip[3];
ip[0] = 0;
ip[1] = 0;
ip[2] = 0;
if (ip[0] == NULL) {
printf("ip[0] is NULL \n");
}
printf("%d \n", *ip[0]);
return 0;
}
现在你可以int *ip[]与你的g.hexagons[0][0].vertice[0]
我想你可能误解了你在_hexagon. *vertice[6]并且您的其他数组成员都是指针数组,因此您必须将每个元素视为指针。
int x = 10;
g.hexagons[0][0].vertice[0] = &x;
将指针的地址存储在x指针数组的位置 0 处。