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gcc (GCC) 4.7.0 c89

I am allocating memory using the following:

db_data_size = 32;
db->db_data[i]->name = malloc(db_data_size);

(gdb) p db_data_size
$24 = 32
(gdb) p sizeof(db->db_data[i]->name)
$25 = 8
(gdb) n
205   db->db_data[i]->email = malloc(db_data_size);
(gdb) p sizeof(db->db_data[i]->name)
$26 = 8

In the debugger I get 8 bytes instead of the 32 bytes I think should have been allocated.

My structure is:

struct data {
    int id;
    int set;
    char *name;
    char *email;
};

struct database {
    struct data **db_data;
    size_t database_rows;
    size_t database_data_size;
};

The only think I can think of is that a char* is 8 bytes, and that is what I am getting. However, in malloc I have explicity asked for 32 bytes.

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closed as not constructive by ant2009, Jav_Rock, Eitan T, Flavius, Baz Sep 27 '12 at 8:45

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3  
This is a common mistake by rookies, apparently; other example was posted quite recently: stackoverflow.com/questions/12598839/… –  Jim Balter Sep 26 '12 at 10:43
    
More generally, the rookie mistake is assuming that you know what something does from its name ;-) –  Steve Jessop Sep 26 '12 at 10:50
    
I have allocated a byte size of 32: db_data_size = 32; db->db_data[i]->name = malloc(db_data_size); –  ant2009 Sep 26 '12 at 10:51

2 Answers 2

up vote 5 down vote accepted
sizeof(db->db_data[i]->name)

tells you the size of

char *name;

which is the size of a pointer (to char). It does not tell you the size of the allocated block; if you need to remember that, you must store it separately.

So 8 is the correct answer for a pointer on a 64-bit system.

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sizeof is a compile time operator, which gives the size of a data type. It won't tell you the size of the allocated block of memory, but instead the size of a char*, which on your 64-bit system is 8 bytes.

It's up to you to keep track of the size of the allocated block.

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