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I need to allocate arrays of structures in a bunch of different places in my program, thus putting the work inside a function (VS 2010). Compiler gives warning about uninitialized variable used. So how do I pass it, and how to declare it in the function. I've tried many variations of "&" and "*", to no avail.

(I apologize in advance if my code causes any form of nausea...I'm an English major.)

struct s_stream {
int blah;
};

void xxyz(void)
{
    struct s_stream **StreamBuild;
    char *memBlock_1;

    xalloc(StreamBuild, memBlock_1, 20);
}



void xalloc(struct s_stream **StreamStruct, char *memBlock, int structCount)
{
    int i = sizeof(struct s_stream *);
    if ((StreamStruct=(struct s_stream **) malloc(structCount * i)) == NULL)
        fatal("failed struct pointer alloc");

    int blockSize = structCount * sizeof(struct s_stream);
    if ((memBlock = (char *) malloc(blockSize)) == NULL)
        fatal("failed struct memBlock alloc");

    // initialize all structure elements to 0 (including booleans)
    memset(memBlock, 0, blockSize);

    for (int i = 0; i < structCount; ++i)
       StreamStruct[i]=(struct s_stream *) &memBlock[i*sizeof(struct s_stream) ];
}
share|improve this question
    
What exactly are you trying to do - is it to dynamically allocate arrays of struct s_stream objects? –  Carl Norum Jan 7 '12 at 20:10
    
Tell us the exact warning from the compiler. In particular, which line of code does the compiler dislike? –  Aaron McDaid Jan 7 '12 at 23:58

3 Answers 3

up vote 0 down vote accepted

You are passing a copy of the pointer memBlock_1 to xalloc, so the address returned by malloc is written to the copy and never reaches the calling function. Since you presumably want the address to be available to xxyz in memBlock_1, you have to pass a pointer-to-pointer-to-char as the second argument,

void xalloc(..., char **memBlock, ...)

and call it with xalloc(..., &memBlock_1, ...);. In the body of xalloc, replace all occurrences of memBlock with *memblock, e.g. (*memblock = malloc(blockSize)) == NULL (no need to cast).

Analogously, the StreamStruct parameter of xalloc never changes the StreamBuild pointer-to-pointer-to-struct s_stream in xxyz. If I interpret your intentions correctly, you would also have to add a pointer layer to that parameter, void xalloc(struct s_stream ***StreamStruct, ..., ...), pass the address of StreamBuild in the call, xalloc(&StreamBuild, ..., ...) and dereference the pointer in the function body, e.g. (*StreamStruct = malloc(structCount * i)) == NULL.

share|improve this answer
    
I followed your advice; 2 remaining issues: compiler won't allow: (*StreamStruct = malloc(structCount * i))... I have to cast to (struct s_stream **). The other issue is the last 2 lines where I loop thru and assign the pointers to a block of memory: for (int i = 0; i < structCount; ++i) StreamStruct[i]=(struct s_stream *) &memBlock[i*sizeof(struct s_stream) ]; } I get an unhandled exception. I tried lots of difft permutations of * and & on StreamStruct and memBlock, but no go... –  user994179 Jan 7 '12 at 21:56
    
If you need to cast the result of malloc, that means you're compiling your programme as C++, not as C. That's probably not a big deal, the two have enough in common that simple programmes compile and work as both (after casting malloc returns etc.). In the loop, it should be for(...) (*StreamStruct)[i] = &memBlock[...]; - unless I overlook something. Hmm, 'unhandled exception'. Yep, C++. If you're compiling as C++ (not a bad idea with Microsoft's compiler, that doesn't support C99, but it's fine as a C++ compiler), you might consider writing C++, using new and such. –  Daniel Fischer Jan 7 '12 at 22:14
    
which is correct? for(...) (*StreamStruct)[i] = &memBlock[...]; OR for(...) (*StreamStruct)[i] = (*memBlock)[...]; ? The latter seems to work, and is consistent with what you said earlier... –  user994179 Jan 7 '12 at 23:41
    
Oops, forgot that memBlock also got an additional layer, (*StreamStruct)[i] = &((*memBlock)[...]); should be the one. –  Daniel Fischer Jan 7 '12 at 23:45
    
Got it. Thanks for the 3 c's answer ( clear, concise, and courteous )! –  user994179 Jan 7 '12 at 23:46

I'm not exactly sure I understand your question, but it seems like you want a function that will create a dynamically allocated array of struct s_stream objects and return them to the caller. If that's the case, it's pretty easy:

void easiest(void)
{
  struct s_stream *array = malloc(20 * sizeof(struct s_stream));
}

You could move the malloc() off into its own function and return the pointer:

void caller(void)
{
   struct s_stream *array = create_array(20);
}

struct s_stream *create_array(int count)
{
  return malloc(count * sizeof(struct s_stream));
}

Or if you insist on passing the array as a parameter:

void caller(void)
{
   struct s_stream *array;
   create_array(&array, 20);
}

void create_array(struct s_stream **array, int count)
{
  *array = malloc(count * sizeof(struct s_stream));
}
share|improve this answer
    
Your first create_array() should return void* shouldn't it? Or better struct stream* to be type-safe. –  alk Jan 7 '12 at 20:41
    
Yup - typo. I'll fix it when I get back to a computer. –  Carl Norum Jan 7 '12 at 23:53
    
Fixed - copy/paste error when I was writing the answer under a bit of time pressure. Sorry about that! –  Carl Norum Jan 8 '12 at 2:10

Is there any reason you're not using a regular array? For example;

struct s_stream* streamArray = malloc(sizeof(s_stream*structCount));

Then you have an array of s_stream you can just access with streamArray[0] to streamArray[structCount-1] without dereferencing any extra pointers.

share|improve this answer
    
That's the way I was doing it originally. But I am trying to use qsort on the array (which is 2.4 million members), and the heavy recursion caused stack overflows. So trying to use and sort pointers instead.... –  user994179 Jan 7 '12 at 22:04

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