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How do I access elements in this stuct if I initialize a list as follows:

group **list = (group **) malloc(sizeof(group)); 

typedef struct
{
    // ID of the group, 'A' to 'D'
    char id;

    // a list of members in the group 
    char **members;
} group;

I tried using (*list)->id = 'A' and it compiles but then gets a segmentation fault error when running the program.

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Hmm - why are you casting that malloc pointer to a group ** instead of a group *? –  Sam Dufel Jul 16 '12 at 14:38
3  
You shouldn't be casting the result of malloc at all. –  Paul R Jul 16 '12 at 14:44
    
@SamDufel: I want to initialize a pointer to a list that points to a malloc'ed array of pointers to group struct. –  SharkTiles Jul 16 '12 at 14:46
    
@PaulR: I cast it to make it compatible with C++, but even if I don't cast it, I still can't access the elements in group struct :( –  SharkTiles Jul 16 '12 at 14:48

4 Answers 4

up vote 3 down vote accepted

Although it compiles fine, you didn't allocate memory correctly.

You allocated memory for group **list, which is eventually an array of pointers to struct group. What I think you intended to do doing is:

group** list = malloc(sizeof(group*) * 5);  // e.g. 5 pointers

Now for each pointer in the array, allocate its own memory:

int i;
for (i = 0; i < 5; i++) {
    list[i] = malloc(sizeof(group));
}

For instance, to access id in the 2nd struct, you do:

list[1]->id = 'A';

Note that *list access the first struct, and is equivalent to list[0].

Sidenote:
Two levels of indirection allow you to store the structs in a non-continuous way in the memory. Alternatively, you can use one level of indirection and store them continuously:

group list* = malloc(sizeof(group) * 5);  // Again, 5 structs

and then access the members with:

list[0].id = 'A';
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Thank you very much, you explained it really well!!! –  SharkTiles Jul 16 '12 at 15:35
struct group
{
    // ID of the group, 'A' to 'D'
    char id;

    // a list of members in the group 
    char **members;
};

//this initializes one group
group *a_group = malloc(sizeof(struct group)); //cast not needed in C

//this initializes an array of 10 group
group **list = malloc(sizeof(struct group *) * 10);

//initialize each one of the 10
for(int i = 0; i < 10; ++i){
  list[i] = malloc(sizeof(struct group));
}

//get something out of group
a_group->id;

//get first group out of list
list[0]->id;
*list->id;

// 10 elements continuous memory
group *array_of_groups = malloc(sizeof(struct group) * 10);
array_of_groups[0].id;
*array_of_groups.id;
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2  
Isn't that double allocating the memory? My C is rusty, but shouldn't you be doing group **list = malloc(sizeof(group *) * 10) ? –  Sam Dufel Jul 16 '12 at 14:42
    
-1 for providing an answer with so many compilation errors. What's group[0] or *group in the last lines? You forgot the struct keyword in the malloc. You're not using list like the OP intended. –  Eitan T Jul 16 '12 at 14:43
    
@EitanT Ok next time i'll write pseudo next to it. Anyway, is it better now? –  RedX Jul 16 '12 at 14:48
    
@EitanT He typedefed it. But i'll do it just for making it clear. –  RedX Jul 16 '12 at 14:59
    
@sam Yes. fixed that. And added example for case. –  RedX Jul 16 '12 at 15:01

Lets say i have to make a list of pointers. members of this list each points to a memory chunk mapped by type group.

now lets say i have 10 items,

so:

group *tmp = malloc(sizeof(group) * 10);

now tmp is pointing to the start of these chunks.

Now i want to to make a list of pointers, where every item in the list points to a chunk.

lets create 10 pointers,

group ** list = malloc(sizeof(group *) * 10)

now initialize this list of of pointers:

i = 10;
while(i--) {
    list++ = &(tmp++);
}

Now your list is initialized with pointers to chunks. One problem remained, your list is pointing to the last. If you don't want that

list-= 10;

Now you want to retrieve something from the list :

while(i--) {
    printf("%c\n", (*(list++))->a);
}

But this kind of list management is weird and not to mention error prone. you should seriously think about maintaining your list through "LINKED LIST". a trivial scenario like you have given can be easily implemented through a singly linked list.

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This is a very non-intuitive way of initializing a list to pointers to structs. –  Eitan T Jul 16 '12 at 15:04
    
The most intuitive way to create list of pointers is through "linked list". The approach taken by this question is already "non intuitive". What we are trying to do is to find a semantically correct answer. But all of our approaches are aesthetically bad, not mention will be good source of future bugs. –  Aftnix Jul 16 '12 at 15:05
    
No, not if you want O(1) complexity for accessing members. It's perfectly legitimate to create an array of pointers to structs. I just said that your way of doing that is counter-intuitive. –  Eitan T Jul 16 '12 at 15:07
    
Can't you just set it up as an array? group * list = malloc(sizeof(group) * 10); list[0]->id = 'A' ? –  Sam Dufel Jul 16 '12 at 15:07
    
@SamDufel Yeah, I think that in this case you should (the array of pointers is indeed pointless here). –  Eitan T Jul 16 '12 at 15:09

Keep in mind the double-indirection pointer is just a pointer to a list that happens to point to the first entry by default. You need to allocate for the individual entry/entries, not just the list pointer (**list), some flavor of the following:

//rough code, not tested... std caveats apply :)
group *one_group = malloc(sizeof(group));

list[0]=one_group;
list[0]->id = 'A'; // or one_group->id='A'; 
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