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What is the reason that gcc adds char* (e.g. "STRING") and char (e.g. 'C') as pointers?

  const char *ccc = "Test1";
  const char t = 'T';
  const char *res = ccc + t;
  printf("%s, %p, %d, %p\n", res, ccc, t, res);

outputs

  , 0x8048d97, 84, 0x8048deb

I mean, can you point to the documentation, standard specs, or an article? Can I control or disable this behavior?

UPD: Why I ask and what is unexpected, is that

  CString() + 'c'

works as

 (char*)CString() + (char)char_var

when compiler cannot find appropriate operator +. I thought maybe to disable automatic concatenation and find all such places (in legacy code). But mostly I just wanted to find exact documentation for the behavior.

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Why would you want to control or disable this behavior? What would you expect this to do? –  Dan Fego Jan 18 '12 at 17:14
    
strcat might be of some use here. –  Mr. Llama Jan 18 '12 at 17:15
2  
This is just how C and C++ treat pointers. If you want operator overloading, use std::string. In fact, use std::string anyway! –  Jonathan Grynspan Jan 18 '12 at 17:16
    
If you want a standard, buy ISO9899 and ISO14882 in the versions that apply to your environment. This it the fundamental pointer arithmetics that C and C++ are based on. There is no magic added to C types just because you compile it as C++. –  PlasmaHH Jan 18 '12 at 17:21

3 Answers 3

up vote 3 down vote accepted

In ccc + t, t is treated as an integer. The net effect is that res points to ccc plus 84 bytes, where 84 is the ASCII code of 'T'.

It is worth pointing out that ccc + t operates purely on the pointers, and does not touch the actual string. I am saying this in case there's any expectation that "Test" + 'T' might append the character to the string -- it does not.

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It's called pointer arithmetic. For example ptr + x is equivalent to &ptr[x].

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C does not have strings. C has arrays and pointers.

You should think of the "string constant" "Test1" as syntactic sugar for the array initializer { 'T', 'e', 's', 't', '1', 0x00 }.

C does not even have characters. C has small (eight-bit, usually) integers.

You should think of the "character constant" 'T' as syntactic sugar for the numeric constant 0x54 (assuming ASCII).

So when you write

const char *ccc = /* whatever */;
char t = /* whatever */;
const char *res = ccc + t;

you're adding a small positive integer to a pointer. No more, no less.

I would offer advice on how to do the thing you wanted to do, but it would be tedious and verbose and distract from the point. C++ has a decent string class these days, you will probably be happier just learning that.

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"C does not have strings" So why do you think C Standard defines a string as: "A string is a contiguous sequence of characters terminated by and including the first null character"? –  ouah Jan 18 '12 at 17:23
1  
Of course the standard defines the interpretation of that syntactic sugar for array initializers that I mentioned. And there are a bunch of standard library functions that use the same convention, that also need definitions. It is a long way from there to actually having a first-class string type in the language. –  Zack Jan 18 '12 at 17:26

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