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How can I free a const char*? I allocated new memory using malloc, and when I'm trying to free it I always receive the error "incompatible pointer type"

The code that causes this is something like:

char* name="Arnold";
const char* str=(const char*)malloc(strlen(name)+1);

free(str); // error here
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Is there a particular reason you need to do it this way? Usually, string constants are you know of ahead of time, so to be dynamically allocating space for a string constant seems strange. –  James Kingsbery May 12 '10 at 14:20
    
yes the problem is that it's my homework we are studying ADT, so I'm limited –  lego69 May 12 '10 at 14:23
3  
Basically a C language problem. The signature of free() should have been void free(const void* p);. Fixed in C++ (with delete) –  MSalters May 12 '10 at 14:26
6  
However, it makes no sense whatsoever. Once the memory is allocated to str, it's impossible to change it through str, which means that it is permanently whatever was in the memory when malloc() grabbed it. It isn't possible to copy the name in without casting str. (Also, assigning a string literal to a char * is not good, as trying to modify a string literal is undefined behavior. I think you just got your consts mixed up.) –  David Thornley May 12 '10 at 15:32
1  
@DavidThornley: The const char * you get may have been converted from char * after the contents are filled; e.g. from const char* foo() { char* s = malloc(...); strcpy(s, ...); return s; }. –  musiphil Mar 7 at 1:06

10 Answers 10

up vote 22 down vote accepted

Several people have posted the right answer, but they keep deleting it for some reason. You need to cast it to a non-const pointer; free takes a void*, not a const void*:

free((char*)str);
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7  
It will work, but casting const to non-const is a symptom of code smell. –  el.pescado May 12 '10 at 14:17
4  
Why the cast to char * ? why not directly free((void *) str) ? –  philant May 12 '10 at 14:30
2  
@el. Sure, but that seems rather unnecessary. I'm not going to keep two pointers to the same place around, one const and one not, just so I can free the non-const one at the end without using an evil cast –  Michael Mrozek May 12 '10 at 14:49
14  
I recall reading about a memory deallocation function in the linux kernel that took a const pointer, and someone asked Linus why, and he defended it as saying it doesn't actually modify the value pointed to, either conceptually or in practice, it merely looks up the memory block using the pointer and deallocates it. I concur with his assessment, and thus view the free() function's specification as incorrect. But alas, it is the standard. –  rmeador May 12 '10 at 15:48
3  
If "freeing" was conceptually changing, then is it OK to declare a const int and then leave the scope in which it was declared? That "frees" the automatic variable, in the sense of releasing the resource and making pointers to it no longer valid. It's just a quirk that free takes non-const, it's not a commandment from on high. In the rare case that there's only one thing you do with your pointer that's non-const, and that's free it, then pragmatically you probably get more benefit from a const pointer (which you cast to free) than a non-const pointer (which you might accidentally modify). –  Steve Jessop May 12 '10 at 19:31

Your code is reversed.

This:

char* name="Arnold";
const char* str=(const char*)malloc(strlen(name)+1);

Should look like this:

const char* name="Arnold";
char* str=(char*)malloc(strlen(name)+1);

The const storage type tells the compiler that you do not intend to modify a block of memory once allocated (dynamically, or statically). Freeing memory is modifying it. Note, you don't need to cast the return value of malloc(), but that's just an aside.

There is little use in dynamically allocating memory (which you are doing, based on the length of name) and telling the compiler you have no intention of using it. Note, using meaning writing something to it and then (optionally) freeing it later.

Casting to a different storage type does not fix the fact that you reversed the storage types to begin with :) It just makes a warning go away, which was trying to tell you something.

If the code is reversed (as it should be), free() will work as expected since you can actually modify the memory that you allocated.

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It makes no sense to malloc a pointer to const, since you will not be able to modify its contents (without ugly hacks).

FWIW though, gcc just gives a warning for the following:

//
// const.c
//

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

int main(void)
{
    const char *p = malloc(100);

    free(p);
    return 0;
}

$ gcc -Wall const.c -o const
const.c: In function ‘main’:
const.c:8: warning: passing argument 1 of ‘free’ discards qualifiers from pointer target type
$ 

What compiler are you using ?

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3  
Here is one case where you might like to free a pointer-to-const: char const* s = strdup("hello"); free(s);. –  bobbogo Jul 19 '12 at 9:44
    
@bobbogo: yes, although it's hard to imagine why you'd want to make a const copy of a string literal in the first place. –  Paul R Jul 19 '12 at 10:46
3  
You may wish to take a copy of a string which is about to be freed() or otherwise changed by library code. You are not going to modify your copy, so you mark it const. –  bobbogo Aug 27 '12 at 11:44

There's no purpose in casting a malloc'd pointer to const. Any function that takes a const pointer should not be responsible for freeing the memory that was passed to it.

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There are cases you want to free a const*. However you don't want to do it unless you allocate/asign it in the same function. Else you are likely to break things. See the code below for a real world example. I use const in the function declarations to show that I am not changing the content of the arguments. However it is reassigned with a lowercased duplicate (strdup) that needs to be freed.

char* tolowerstring(const char *to_lower)
{
    char* workstring = strdup(to_lower);
    for(;workstring != '\0'; workstring++)
        *workstring = tolower(workstring);
    return workstring;
}

int extension_checker(const char* extension, const char* to_check)
{
    char* tail = tolowerstring(to_check);
    extension = tolowerstring(extension);

    while ( (tail = strstr( tail+1, extension)) ) { /* The +1 prevents infinite loop on multiple matches */
        if ( (*extension != '.' ) && ( tail[-1] != '.'))
            continue;
        if ( tail[strlen(extension)] == '\0') {
            free(tail);
            free( (char*) extension);
            return 1;
        }
    }
    free(tail);
    free( (char *) extension);
    return 0;
}
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If you are talking about pure C and you are in complete control of the memory allocation you can use the following trick to cast (const char *) to (char *) which will not give you any warning in compiler:

const char *const_str = (const char *)malloc(...);
char *str = NULL;

union {
  char *mutable_field_p;
  const char *const_field_p;
} u;

u.const_field_p = const_str;
str = u.mutable_field_p;

Now you can use free(str); to free the memory.

But BEWARE that this is evil beyond words and should be only used in strictly controlled environment (e.g. library which allocates and frees strings, but doesn't want to allow user to modify them) Otherwise you will end up with your program crashing when someone provides compile time "STRING" to your free function.

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I could be wrong but I think the problem lies in const. Cast the pointer to non-const like:

free((char *) p);

Because with const you say: Don't change the data this pointer points to.

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1  
free doesn't change the pointer. It frees the memory block the pointer is pointing to. This is a mistake in the language specification. free should clearly take a const pointer. –  Axel Gneiting May 12 '10 at 14:45
4  
@Axel const means that you cannot change the contents of the storage object, not the actual value of the pointer... and freeing the pointed memory is a quite dramatic change I'd say! (BTW It seems a little bit pretentious to think that the specification is wrong [and has been wrong for more than 30 years] and suddenly you discover that you're right and all the review board members weren't, isn't it?) –  fortran May 12 '10 at 14:56
4  
@fortran: it's not at all pretentious, it's a common difference of opinion. delete in C++ can be used on a const char*, so if it's a big controversy then one or the other set of standard authors must be wrong. Actually I don't think it really matters - casting away const to free a pointer is hardly a crisis. –  Steve Jessop May 12 '10 at 15:31
2  
const char* says that what is being pointed to is a constant and cannot be changed. It is not saying that the pointer itself cannot be changed. –  JeremyP May 12 '10 at 15:55
2  
@Axel Gneiting: I never said that the pointer is changed. const indicates that the data at this location should not be changed. But if you free the memory, the data at this location can be overwritten and therefore changed. –  Felix Kling May 12 '10 at 18:41

If you are in C++, I know you put C, but I was wondering if you were in C++, you can use the following:

  free(const_cast<char*>(str));

This will change the const char* into a char * which can be used by free().

However, you should be wondering if what you are writing makes sense when you start using const_cast ...

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8  
You should also be wondering if what you are writing makes sense when you use free() and C++ constructs. –  David Thornley May 12 '10 at 15:16

You cannot free const char * because it is const. Store pointers received from malloc in non-const pointer variables, so that you can pass them to free. You can pass char * arguments to functions taking const char * arguments but opposite is not always true.

void foo (const char *x);
char *ptr = malloc (...);
foo (ptr);
free (ptr);
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3  
In C++, you can delete a const char*. And why shouldn't you? The fact that the pointer prevents the characters from being modified shouldn't disallow to delete the string once it isn't needed anymore. I don't know C well enough, though. Anyone with a quote from the std here? –  sbi May 12 '10 at 14:19
2  
-1, the constness of a pointer doesn't affect your ability to free it in any way. –  Hasturkun May 12 '10 at 14:24
    
void free(void *ptr); - you cannot pass const pointer to it. Unless, you cast it to non-const. –  el.pescado May 12 '10 at 14:27
    
@el.pecado: gcc -Wall just gives a warning when you pass a pointer to const to free() - what compiler are you using that does not allow this ? –  Paul R May 12 '10 at 14:34
1  
@JeremyP That example is specious; it's wrong, but not because the string is const, it's just a special case of string literals –  Michael Mrozek May 12 '10 at 17:02

I think even if you cast the pointer to a non-const, the result of free will depends on the implementation. Normally const was designed for variable that you don't want to modify !!

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