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I'm trying to print the list of a singly linked list that I referred to in link text

It works, but I do get the compiler warnings

"Initialization discards qualifiers from pointer target type"(on declaration of start = head) and return discards qualifiers from pointer target type"(on return statement) in this code (I am using XCode):

/* Prints sinly linked list and returns head pointer */
LIST *PrintList(const LIST *head) 
{
    LIST *start = head;

    for (; start != NULL; start = start->next)
        printf("%15s %d ea\n", head->str, head->count);

    return head;
}

Any thoughts? Thanks!

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2 Answers 2

up vote 37 down vote accepted

It's this part:

LIST *start = head;

The parameter for the function is a constant pointer, const LIST *head; this means you cannot change what it is pointing to. However, the pointer above is non-const; you could dereference it and change it.

It needs to be const as well:

const LIST *start = head;

The same applies to your return type.


All the compiler is saying is: "Hey, you said to the caller 'I won't change anything', but you're opening up opportunities for that."

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Dumb question, but what does a const return type look like? I tried searching on the web, and I can't seem to find one. –  Crystal Feb 23 '10 at 6:00
5  
@Crystal - const LIST *PrintList(const LIST *head) { ... } –  R Samuel Klatchko Feb 23 '10 at 7:42
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In following function you will get the warning that you encountered with,

void test(const char *str) {
  char *s = str;
}

There are 3 choice:

  1. Remove the const modifier of param:

    void test(char *str) {
      char *s = str;
    }
    
  2. Declare the target variable also as const:

    void test(const char *str) {
      const char *s = str;
    }
    
  3. Use a type convert:

    void test(const char *str) {
      char *s = (char *)str;
    }
    
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