问几个比较弱的问题 !!呵呵
主函数中有int *p[n],int (*p)[n];把这两个的实参传递出去。
写出外调函数fun的形参的类型
[解决办法]
#include <stdio.h>void foo(int *p1[], int (*p2)[3]){ printf("%d\n", *p1[0]); printf("%d\n", *p1[1]); printf("%d\n", *p1[2]); printf("===\n"); printf("%d\n", (*p2)[0]); printf("%d\n", (*p2)[1]); printf("%d\n", (*p2)[2]);}int main(void){ int a = 1, b = 2, c = 3; int v[] = { a, b, c }; int *p1[] = { &a, &b, &c }; int (*p2)[3] = &v; foo(p1, p2); return 0;}123===123Press any key to continue