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Well, I would like to initiate my 2D array by a void function. But I obtain a Segmentation Fault...

That's my code :

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


    void groupeetchoixgen(int*** choixGEN);

    void main(int args, char **argv)
    {
        int** choixGEN;
        int i,j;
        choixGEN=(int**) malloc (sizeof(int*)*2);  
        for (i=0; i<3; i++)
        {
            choixGEN[i]=(int*) malloc (sizeof(int)*3);
        } 
        groupeetchoixgen(&choixGEN);
    }

        void groupeetchoixgen(int*** choixGEN)
    {
        (*(choixGEN)[1])[0]=1;
    }

I Think that the trouble is (*(choixGEN)[1])[0]=1; But I don't know why !

Thanks for your help

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can you paste your error message here? –  Hans Z Jul 20 '12 at 19:43
    
shouldn't it just be (*choixGEN)[1][0] = 1; ? –  stefan Jul 20 '12 at 19:44

3 Answers 3

up vote 1 down vote accepted

You only allocate memory for two (int*) but you try to reference choixGEN[0],choixGEN[1],choixGEN[2] which is 3

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In General, SegFault in C means:

  1. You're accessing a location in memory which was not allocated.
  2. You're using a dangling pointer to access a memory location

So, most likely, your problem is in this line:

choixGEN=(int**) malloc (sizeof(int*)*2);

You declared a int*** choixGEN but only allocated memory for (int**)

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On this line:

    choixGEN=(int**) malloc (sizeof(int*)*2);

you are only allocating space for 2 int*s, but you access the 3rd element in the for loop.

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