Getting the address of a triple pointer to char
gcc 4.4.4 c89
I am just wondering why I am getting different memory address. When I print the address of animals in main I get the following:
animals [ rabbit ] : [ 0xbfab2e48 ]
animals [ rabbit ] : [ 0xbfab2e48 ]
However, when I print in 开发者_运维百科the function, I get different memory locations. I think they should be the same.
ptr animals [ rabbit ] : [ 0xbfab2e08 ]
ptr animals [ rabbit ] : [ 0xbfab2e08 ]
Many thanks for any advice,
int main(void)
{
char *animals[] = {"rabbit", "cat", "dog", "elephant", "racoon", NULL};
char *countries[] = {"india", "amercia", "france", "spain", "canada", "mexico", NULL};
char *cars[] = {"ford fista", "Masda 3", "honda city", "toyata cote", NULL};
char **ptr_data[] = {animals, countries, cars, NULL};
printf("animals [ %s ] : [ %p ]\n", *animals, (void*)animals);
printf("animals [ %s ] : [ %p ]\n", animals[0], &animals[0]);
print_data_ptr(ptr_data);
return 0;
}
void print_data_ptr(char ***ptr)
{
char **data_list = NULL;
printf("ptr animals [ %s ] : [ %p ]\n", *ptr[0], (void*)&ptr[0]);
printf("ptr animals [ %s ] : [ %p ]\n", **ptr, (void*)ptr);
}
animals
is an array of char *
values, and ptr_data
is an array of char **
values.
When you initialise ptr_data
in this line:
char **ptr_data[] = {animals, countries, cars, NULL};
animals
is evaluated as a pointer to its first element - so ptr_data[0]
is the same as &animals[0]
- the address of the first char *
in animals
. The same thing happens in your two printf()
functions in main - animals
and &animals[0]
evaluate to the same thing, which is also the pointer value stored in ptr_data[0]
.
Within your function, ptr
is a pointer to the first element of ptr_data
in main - so ptr
is equivalent to &ptr_data[0]
. &ptr[0]
is completely equivalent to ptr
- so &ptr[0]
shows you the address of ptr_data[0]
, not what is stored there. If you print ptr[0]
instead, you will get the address of animals[0]
.
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