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In the following code, why is not possible to do this dereferencing: *arr = 'e'. Shouldn't the output be the character 'e'?

int main ()
{
    char *arr = "abt";
    arr++;
    * arr='e'; // This is where I guess the problem is occurring.
    cout << arr[0];

    system("pause");

}

I am getting the following error:

Unhandled exception at 0x00a91da1 in Arrays.exe: 0xC0000005: Access violation writing location 0x00a97839.

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If "abt" is a constant string literal, then why does the following code modify the same constant literal: int main (void) { char arr[]= "abt"; arr[0]='e'; cout<<arr[0]; system("pause"); } –  John Nash Jul 1 '12 at 23:14
    
possible duplicate of Why is this C code causing a segmentation fault? –  AndreyT Jul 1 '12 at 23:19

2 Answers 2

up vote 0 down vote accepted
int main ()
{
    char *arr= "abt"; // This could be OK on some compilers ... and give an access violation on others
    arr++;
    *arr='e'; // This is where I guess the problem is occurring.
    cout<<arr[0];

    system("pause");

}

In contrast:

int main ()
{
    char arr[80]= "abt"; // This will work
    char *p = arr;
    p++;    // Increments to 2nd element of "arr"
    *(++p)='c'; // now spells "abc"
    cout << "arr=" << arr << ",p=" << p << "\n"; // OUTPUT: arr=abc,p=c
return 0;    
}

This link and diagram explains "why":

http://www.geeksforgeeks.org/archives/14268

Memory Layout of C Programs

A typical memory representation of C program consists of following sections.

  1. Text segment
  2. Initialized data segment
  3. Uninitialized data segment
  4. Stack
  5. Heap

And a C statement like const char* string = "hello world" makes the string literal "hello world" to be stored in initialized read-only area and the character pointer variable string in initialized read-write area.

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Thanks for the help! –  John Nash Jul 1 '12 at 23:27
2  
Except in your version arr isn't an lvalue, so you can't increment it... –  Neil Jul 1 '12 at 23:32
    
The second "fixed" example is wrong, you can't do arr++; on an array. –  Jesse Good Jul 1 '12 at 23:37
    
Picky, picky ;) Example corrected :) –  paulsm4 Jul 2 '12 at 0:19

"abt" is what is called a string literal constant, any attempts to modify it result in undefined behavior *arr='e';.

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1  
Then why I am able to do the following:int main (void) { char arr[]= "abt"; arr[0]='e'; cout<<arr[0]; system("pause"); } –  John Nash Jul 1 '12 at 23:13
    
1  
char arr[] = "abt"; is an array of characters, char *arr= "abt"; is a pointer to a string literal that resides in read-only memory. –  Jesse Good Jul 1 '12 at 23:19
    
Alright, thanks. –  John Nash Jul 1 '12 at 23:23

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