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I'm sure this must have been asked before but I can't seem to find an answer anywhere. I have a struct defined in a header file as so:

struct lock {
    char *name;
    // add what you need here
    void *holder;
    // (don't forget to mark things volatile as needed)
};

I want to make a list of lock objects. That way I can say something like:

lock_list[0] = create_lock();
lock_list[1] = create_lock();

I tried different ways but they all give me errors. I thought I could simply say:

lock[2] lock_list;

but it didn't work. Any help would be much appreciated.

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try lock lock_list[2]; or struct lock lock_list[2]; –  DwB Nov 1 '11 at 19:50

2 Answers 2

up vote 2 down vote accepted

If create_lock() returns a pointer to a lock, the following should work:

lock *lock_list[2];

Also, since you didn't post it, you need to typedef your struct if you want to be able to omit the struct part when using it:

typedef struct lock lock;
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1  
I don't see a typedef. Perhaps he needs struct lock *lock_list[2]. (Or, perhaps struct lock lock_list[2], depending on the return type of create_lock.) –  Robᵩ Nov 1 '11 at 19:50
    
@Rob Yes I just noticed that. I will try 'struct lock* lock_list[2]' . Thanx for the quick reply –  Free Lancer Nov 1 '11 at 19:53
    
YES IT WORKED!! –  Free Lancer Nov 1 '11 at 19:56

If it's not fixed size, you can produce a linked list:

typedef struct lock_t lock;
typedef struct lockList_t lockList;

struct lock_t {
    char *name;
    void *holder;
}

struct lockList_t {
    lock lock_entry;
    lockList *lock_next;
}

You can then use an instance of lockList to store a dynamically sized list of locks.

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thanx I'll keep that in mind for the future but for now it's a constant length 4. –  Free Lancer Nov 1 '11 at 20:15

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