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The sizeof(test) returns 24. It is an array of 3 char* pointers which are 8 bytes each on my machine. My question is does C properly allocate space for the characters as well? I guess it does because this works but I want to make sure I am doing it correctly.

char* test[] = {"QW", "BT", "GH"};
int size = sizeof(test) / sizeof(char*);
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4 Answers 4

up vote 6 down vote accepted

Yes, it does. The characters may be in a read-only portion of the memory though.

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Yes, the compiler will allocate space (generally in the read-only static data section) for the string literals.

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Yes. The value is located in memory at the address pointed by the *char pointer used in the array. So yes, it is stored in the memory.

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My rewording of 6.4.5/5 in the Standard

... string literals are implemented as arrays of static storage duration with 'char' type ...

So, the objects are allocated as any other static variable

static int arr[100] = {0};
if (strcmp(foo, "bar")) exit(0);
int *ptr = malloc(100 * sizeof *ptr);

The array arr and the string literal "bar" are allocated in the same way; different than the way ptr is allocated.

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Note that they're also non-modifiable. –  R.. Apr 3 '11 at 21:41

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