Min*_*ius 4 c arrays loops parameter-passing
我想将一个数组传递给 C 中的函数并迭代它。我有这个代码:
#include <stdio.h>
int funct(int * a);
int main(int argc, char ** argv){
int a[5] = {0};
int b[5] = {1, 1};
printf("Size of cache: %d\n", sizeof(a));
printf("Array values:\n");
printf("Numb of elments in a[]: %d\n", (sizeof(a) / sizeof(a[0])));
for(int i = 0; i < (sizeof(a) / sizeof(a[0])); i++){
printf("for loop\n");
printf("%d\n", a[i]);
}
printf("\n");
printf("Size of cache: %d\n", sizeof(b));
printf("Array values:\n");
printf("Numb of elments in a[]: %d\n", (sizeof(b) / sizeof(b[0])));
for(int i = 0; i < (sizeof(b) / sizeof(b[0])); i++){
printf("for loop\n");
printf("%d\n", b[i]);
}
printf("\n");
funct(a);
funct(b);
return 0;
}
int funct(int * a){
printf("Size of cache: %d\n", sizeof(a));
printf("Numb of elements in a[]: %d\n", (sizeof(a) / sizeof(a[0])));
printf("Array values:\n");
for(int i = 0; i < (sizeof(a) / sizeof(a[0])); i++){
printf("sizeof(a): %d\n",sizeof(a));
printf("sizeof(a[0]): %d\n",sizeof(a[0]));
printf("for loop\n");
printf("%d\n", a[i]);
}
printf("\n");
return 0;
}
结果是:
Run Code Online (Sandbox Code Playgroud)Size of cache: 20 Array values: Numb of elments in a[]: 5 for loop 0 for loop 0 for loop 0 for loop 0 for loop 0 Size of cache: 20 Array values: Numb of elments in a[]: 5 for loop 1 for loop 1 for loop 0 for loop 0 for loop 0 Size of cache: 4 Numb of elements in a[]: 1 Array values: sizeof(a): 4 sizeof(a[0]): 4 for loop 0 Size of cache: 4 Numb of elements in a[]: 1 Array values: sizeof(a): 4 sizeof(a[0]): 4 for loop 1
请解释为什么我无法迭代函数内的数组 - 我做错了什么 (i) 以及如何正确处理它 (ii)。谢谢
因为sizeof运算符为您提供指针的大小,而不是数组中的元素计数,所以您应该像这样编写函数
int funct(int * a, int count){
printf("Size of cache: %d\n", sizeof(a));
printf("Numb of elements in a[]: %d\n", (sizeof(a) / sizeof(a[0])));
printf("Array values:\n");
for(int i = 0; i < count; i++){
printf("sizeof(a): %d\n",sizeof(a));
printf("sizeof(a[0]): %d\n",sizeof(a[0]));
printf("for loop\n");
printf("%d\n", a[i]);
}
printf("\n");
return 0;
}
然后在main()函数调用中
funct(a, sizeof(a) / sizeof(a[0]));
funct(b, sizeof(b) / sizeof(b[0]));
您无法获取指针指向的元素的数量,因此唯一的方法是将其作为函数参数与数组一起传递。
另请注意,您没有正确初始化数组,并且在尝试打印数组元素时这将是未定义的行为。