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I need to make an array of strings for a program in one of my CS classes. We are to just assume that the length of all the strings is no more than 50 (this accounts for the null character).

I need use malloc() or calloc() to allocate the proper amount of memory for the array, but I am new to C and I don't really know how to use those functions.

The real question I guess is how much memory to I need do allocate for an array of x strings of 50 characters.

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\0 is the null terminator or null character –  Jorge Israel Peña Sep 12 '11 at 0:24

3 Answers 3

up vote 2 down vote accepted

\0 is called the termination character for strings.

What you need is array of char pointers.

char *strArrayPtr[X]; // X needs to be a compile time constant.
                      // C99 supports variable length arrays too.

Now each index holds pointer to an array that is allocated by malloc(50);

Example:

#include <stdlib.h>
#include <stdio.h>

int main() {

    char *ar[2] ;
    ar[0] = "Hello";  // This needs to malloced memory in your case
    ar[1] = "World!"; // i.e., ar[0] = malloc(50);

    printf("%s", ar[0]);
    return 0;
}
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My X will be changing. What it is, is the number of words from three different files. I need to merge all the words from each of the files into a 2D array then sort it for output to a new file. –  Michael Schilling Sep 12 '11 at 0:33
2  
@Michael - With the given ideas, first start working out. SO is there to help you when you are struck :) –  Mahesh Sep 12 '11 at 0:36
    
Ok, I guess I just don't really know how to use malloc(), am I supposed to figure out the whole array size right away? malloc(X * (however many bytes a char takes) * 50) It's supposed to be a 2D array. –  Michael Schilling Sep 12 '11 at 0:43
    
"I need to make an array of strings for a program in one of my CS classes..." Now with the given description and what you are doing with malloc doesn't match. malloc(X * (however many bytes a char takes) * 50) doesn't give you an array that can hold strings. It just gives a contiguous sequence to hold characters. –  Mahesh Sep 12 '11 at 0:45
    
@Michael - If you're using a char ** (which is the simplest to understand) you'll need two (sort of) calls to malloc - one to allocate the pointers that the char ** points to, and then one (in a loop) to allocate each char * (these are the actual 50-char strings) in the char ** array. (You can do it in one allocation, but understanding how to make it work is pretty tricky, and if this is homework your teacher may not be very happy with the code you'll write to make it work.) –  Chris Lutz Sep 12 '11 at 0:48

If you want to make a variable-sized array of fixed-size strings:

char **arr = calloc(len, 50 * sizeof(char));

Don't forget to free the memory!

for(unsigned long i = 0; i < len; ++i)
    free(*arr++);

You're not going to be dynamically pushing elements, are you? If so, we're going to have to get a bit more complicated. (I'd add a StringArray::capacity, to speed up push, but I don't want to overcomplicate things... Seeing as how I suck at C, if you look at the comments below. ;))

struct StringArray
{
    char** arr;
    unsigned long len = 0;
};

StringArray StringArray_init(char** arr = NULL, unsigned long len = NULL)
{
    StringArray a;
    a.arr = arr;
    a.len = len;
    return(a);
}

void StringArray_push(StringArray *a, char* str)
{
    if(len == 0)
    {
        a.arr = StringArrayInit(malloc(sizeof(char*)), 1);
    }
    else
    {
        a.len++;
    }

    a.arr = realloc(a.arr, a.len * sizeof(char*));
    a.arr[a.len - 1] = malloc((strlen(str) + 1) * sizeof(char));
    strcpy(a.arr[a.len - 1], str);
}

void StringArray_free(StringArray a)
{
    for(unsigned long i = 0; i < a.len; ++i)
        free(a.arr[i]);
}

StringArray szArr = StringArray_init();
StringArray_push(&szArr, "This is a string.");
StringArray_free(szArr);

It's a heck lot easier with C++. :)

std::vector<std::string> arr;
arr.push_back("This is a string."); 
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1  
a) You forgot return a; in StringArray_Init(). b) You can't allocate a char ** with a single malloc call. You could allocate a char (*)[50] with one malloc call, but char ** will always use two levels of indirection. –  Chris Lutz Sep 12 '11 at 0:44
1  
It's only the third assignment. I won't need to use any structures. –  Michael Schilling Sep 12 '11 at 0:45
    
Also size_t len = 0; in a struct isn't valid C. (Perhaps you've been in C++ land for a bit too long... (; ) –  Chris Lutz Sep 12 '11 at 0:52
2  
That code is C++, not C. There's no references in C. –  Jonathan Grynspan Sep 12 '11 at 0:53
    
@Chris This is why I prefer working in C++ when I can help it. ;) I hope it's fixed now? –  muntoo Sep 12 '11 at 3:39

Assuming type char, at minimum you will need X * sizeof(char) * 50.

If you are doing all of these allocations separately, there will be overhead for each allocation. So the total amount of memory in this case will be higher.

This overhead is unspecified and can be fairly large.

But I wouldn't worry about that for a homework assignment. I can't imagine the problem needing enough memory to possibly run your system out.

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If you're talking about the terminating NULL, the OP stated that it's already included in the 50. –  Mysticial Sep 12 '11 at 0:33
    
::doh:: Missed that, and I even read it twice. –  Brian Roach Sep 12 '11 at 0:34
    
sizeof(char) == 1 (requirement of C standard, if I remember correctly) –  derobert Sep 29 '11 at 22:58

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