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I've recently decided to brush up my C knowledge (what little of it I have left). I quite quickly realized that the first skill to go cloudy was memory management. Damned.

I decided that the best thing to do, was to write some pointless pointer exercises. The first one was to allocate an array of 4 char arrays, each of which were of variable length.

A simplified version of that code:

#include <stdio.h>
#include <stdlib.h>
#include <string.h>
int main()
{
    char **aStr = malloc(4*sizeof(aStr));
    int j = 0;
    int i = 0;
    while(i<sizeof(aStr))
    {
        j = 4 + 2*i;//in my code, length is determined by arguments
        aStr[i] = malloc(j*sizeof(aStr[i]));
        j--;
        strncpy(aStr[i],"RaisinRubarbCarrot"+i,j);
        aStr[i][j] = 0;//just a habbit
        j++;
        printf("ptr@:%p\n\tkey:%d\n\tval:%s\n\tlength:%d (%d)\n\n",*aStr[i],i,aStr[i],j,strlen(aStr[i]));
        i++;
    }
    free(aStr);
    return 0;
}

I felt this to be clunky, and counter-intuitive. Today I remembered my old nemisis: calloc. I then wrote

char **aStr = (char **)calloc(4, sizeof(char *));

and in the loop:

aStr[i] = (char *) calloc(j,sizeof(char *));

I have found code examples that write the last line like so:

aStr[i] = (char *) calloc(j,sizeof(char));//without the asterisk

Question 1: what's the difference, if any?

Question 2: Isn't there another way of allocating an array of strings? the way I see the code now, it feels/looks like I am first allocating 4 pointers to a single char pointer, and then allocating the actual size required for each pointer. That just feels wrong.

Then again I might be wrong about all of this all together, in which case: feel free to bang my head against the wall and point me in the direction of a decent manual I should read before wasting all of your time...

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aStr[i] = (char *) calloc(j,sizeof(char)); not sizeof(char *) –  Gir Aug 13 '12 at 22:43
    
@Gir, I thought so, strangely, both compile just fine, no warnings issued –  Elias Van Ootegem Aug 13 '12 at 22:44
    
so? i doesnt mean its correct. it doesn't complain because a) you cast both results to the right type b) it doesnt know what you want to do. i am not even sure you need to cast –  Gir Aug 13 '12 at 22:52
    
@Gir: sizeof(char) is 1 by definition, and you shouldn't cast. So it should be aStr[i] = calloc(j, 1); only. –  Kerrek SB Aug 13 '12 at 22:54
    
sizeof(char) might be morereadable –  Gir Aug 13 '12 at 23:18

2 Answers 2

up vote 3 down vote accepted

char * and char are two different types, and have different data sizes. A char is always a single byte, so sizeof(char) is always 1. A pointer to char on the other hand, will be 4 bytes on a 32bit system. So if you use sizeof(char*) to allocate space for a string, you'll be allocating much more than you need.

Using the loop to allocate the individual strings is fine. Assuming a maximum length for your strings, you could just allocate one big block, but that would be clumsy.

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So which of the two methods is to be preferred? calloc or malloc, because in both cases the code does the same thing. I'm currently using calloc because it fits the goal better IMO –  Elias Van Ootegem Aug 14 '12 at 5:15
    
calloc initializes the data elements to zero for you, and so can prevent certain errors. Otherwise they're equivalent: just use which one you think reads better. But if you use malloc be aware that the memory isn't initialized to anything and will be filled with junk data. –  pb2q Aug 14 '12 at 5:18
    
Ok, thanks for clearing this one up for me –  Elias Van Ootegem Aug 14 '12 at 5:20
  1. You should use sizeof(char) instead of sizeof(char*) because you are trying to allocate memory for an array of chars not an array of poiners to chars. So this is the right version:

    aStr[i] = (char*) calloc(j, sizeof(char)); 
    //first argument number of memory
    //locations to be allocated
    //second argument, size of each location
    

    The difference/advantage of calloc over malloc is that it also initialized the memory locations to 0.

  2. You first allocate an array of 4 pointers to chars. And then, you allocate memory for each of the strings (each of the 4 pointers previously allocated will point to one of these arrays)

share|improve this answer
    
sizeof(char) == 1 though. –  mirabilos Mar 31 at 20:44

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