Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

gcc 4.4.3 c89

I am wondering why I can't allocate the size of the array when initializing an array of pointers to char.

I get the following error:

variable-sized object may not be initialized

This works ok. However, the sizeof of will return 4 bytes as a char * is 4 bytes in size. Which is no good, as its not the actual size that I want.

void inc_array(const char * const src, size_t size)
{
    /* Array of pointers */
    char *dest[sizeof(src)] = {0};
}

However, this is what I want to do is pass the actual size and use that to initialize the length of the array.

void inc_array(const char * const src, size_t size)
{
    /* Array of pointers */
    char *dest[size] = {0};
}

What is the difference when sizeof of returns a size_t and I am passing a size_t?

Many thanks for any suggestions,

share|improve this question
add comment

4 Answers

up vote 2 down vote accepted

As the error message says, variable-length arrays can't be initialised - that is, it's the = { 0 } part that's the problem. You can still use a variable-length array - you just need to explicitly initialise it:

void inc_array(const char * const src, size_t size)
{
    /* Array of pointers */
    size_t i;
    char *dest[size];

    for (i = 0; i < size; i++)
        dest[i] = 0;
}
share|improve this answer
    
Yes, you are correct. I have just tested that. –  ant2009 Aug 19 '10 at 5:14
    
so VLA are perfectly acceptable its only when you try and initialize them. I have marked this as correct, as this is the real reason why I got that error. Thanks. –  ant2009 Aug 19 '10 at 6:41
    
@robUK: They're acceptable in the current C standard, and as a gcc extension to the older C standard. –  caf Aug 19 '10 at 7:07
add comment

Use malloc to allocate dynamically sized arrays.

You must also ensure that malloced data is eventually freed.

share|improve this answer
    
Thanks for the tutorial. I know about malloc and free. However, I was just wondering why I could the following char *dest[sizeof(src)] and I can't do char *dest[size]? Thanks –  ant2009 Aug 19 '10 at 3:03
    
@robUK - see the edit to my answer –  D.Shawley Aug 19 '10 at 3:04
1  
@rob: I see. It happens to be the case that sizeof(src) is known at compile time, but size was not. That is the root of the problem. –  kbrimington Aug 19 '10 at 3:05
add comment

In C89 you simply cannot do this - variable sized arrays are not supported before C99. Array sizes are required to be compile-time constants. You want something like:

void inc_array(const char * const src, size_t size) {
    char ** dest = calloc(size, sizeof(char*));
    /* do stuff with dest here! */
}

I'm not sure that you want an array of pointers though. I would have expected the following:

void inc_array(const char * const src, size_t size) {
    char *dest = calloc(size, sizeof(char));
    memcpy(&dest[0], &src[0], size);
    /* do stuff with dest */
    free(dest);
}

Edit: I forgot to answer the second part of your question.

The difference is that sizeof(src) is a compile time expression (IIRC) since it is calculating the size of a type. In this case, it is identical to sizeof(char*) which is probably 32-bits on your platform. However, size in char *dest[size] cannot be statically determined. Both are size_t values but C89 requires that the number of elements in a statically allocated array are determinable at compile time. This is why you have to resort to dynamic allocation.

share|improve this answer
1  
The error isn't that variable-length arrays aren't supported, it's that they can't be initialised. Evidently the OP's compiler supports C99. –  caf Aug 19 '10 at 4:31
    
I figured that the version of gcc supported VLAs as a GNU extension. I should have simply said that VLAs are not supported in C89. I'll edit in the change. –  D.Shawley Aug 19 '10 at 14:52
add comment

The reason the sizeof operator is not working as you would expect is that an array "decays" to a pointer when you pass it to a function:

int array[5];
printf("%d\n", sizeof(array) / sizeof(int)); /* prints 5 */

/* ... */

void some_function(int array[])
{
  printf("%d\n", sizeof(array) / sizeof(int)); /* prints 1, no matter what */
}

As for defining your arrays, in older versions of C, variable length arrays were not allowed (note that Visual Studio still implements this old version of C). You had to specify a constant size:

const size_t some_size = 22;
size_t some_other_size = 5;
int array1[5]; /* okay */
int array2[some_size]; /* okay */
int array3[some_other_size]; /* not okay - not const */

Newer versions of C (compilers that implement the C99 standard) allow you to specify a variable size:

size_t some_other_size = 5;
int array3[some_other_size]; /* okay - VLA */

As a side note, no version of the C++ standard has included support for VLAs. Some C++ compilers have implemented their own extensions, however (See comment by Groxx).

If you want to allocate a variable amount of contiguous memory in a C compiler that doesn't support VLAs, you must use malloc and free, as kbrimington suggested:

size_t size = 5;
int* array = (int*)malloc(sizeof(int) * size);
/* use array */
free(array);
share|improve this answer
    
"No version of C++ has ever allowed VLAs" <- totally inaccurate. C99, the one you're mentioning, does. gcc.gnu.org/onlinedocs/gcc/Variable-Length.html or en.wikipedia.org/wiki/Variable-length_array#Examples (note the first example). Caused a few question-marks when I was compiling with GCC and my prof was compiling with whatever Visual Studio uses. –  Groxx Aug 19 '10 at 3:26
    
@Groxx: I suppose I should rephrase that to "no version of the C++ standard has included a definition for VLAs". It is an extension in GCC and IBM's C++ compiler. And I'm talking about C++, not C, even though I know the question is about C. It's just a side note :) –  Merlyn Morgan-Graham Aug 19 '10 at 3:35
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.