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I am getting the following warning for two lines of my code.

initialization discards qualifiers from pointer target type

The two lines are the sources of the warning.

function (const char *input) {
  char *str1 = input;
  char *str2 = "Hello World\0";
}

I think the first line gives an error because I try to assign a const char* to a char*. How would I fix that?

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3  
Why do you have "\0" on your string? Strings in quotes are already null-terminated. When you say "abc" you get 4-bytes, the last one being 0. –  TJD Jan 26 '12 at 23:06

2 Answers 2

up vote 2 down vote accepted

You need to declare it const:

const char *str1 = input;
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1  
char *str2 = "Hello World"; is not deprecated. Why are you saying that? –  ouah Jan 26 '12 at 23:01
    
That was what I was taught. Is that not the case? –  user1118321 Jan 26 '12 at 23:02
    
Hello, I want to declare it as a char * because the value of str1 will change a lot throughout the function. And if I cast it as a const, I will not be able to change the contents of the char *. Also, I do not want to set an exact size for str2 because of the same reason. I need to manipulate the string a lot, and giving it a fixed size will prevent me from manipulating the string. –  egidra Jan 26 '12 at 23:03
    
@user118321, absolutely not. The two cases aren't even semantically equivalent! –  Carl Norum Jan 26 '12 at 23:05
1  
In that case, you can copy input. For example char *str1 = new char [ strlen (input) + 1 ]; strcpy (input, str1); If you need more room for str2, you need to allocate it on the heap, not the stack, in a similar manner to what I've described for str1. For example str2 = new char [ MY_MAX_STR_LEN ]; –  user1118321 Jan 26 '12 at 23:05
void function (const char *input) {
 char *str1 = input;
 char *str2 = "Hello World\0";
}

in C an object of type char * cannot be initialized with an object of type const char *.

You have do this instead:

const char *str1 = input;

Also a string literal like "Hello World" is already null terminated, there is no need to add the null character yourself, do this instead:

char *str2 = "Hello World";
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Well, at least without an explict cast it can't. –  Carl Norum Jan 26 '12 at 23:06
    
@CarlNorum With an explicit cast of char *, it would no longer be a value of type const char * that initializes str1. –  ouah Jan 26 '12 at 23:11
    
Well, that's splitting hairs pretty finely. You're still initializing it with the pointer value passed into the function. Which is not to say it's safe, which is the reason the error exists in the first place. –  Carl Norum Jan 26 '12 at 23:12

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