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This is trivial, probably silly, but I need to understand what state cout is left in after you try to print the contents of a character pointer initialized to '\0' (or 0). Take a look at the following snippet:

const char* str;
str = 0; // or str = '\0';
cout << str << endl;
cout << "Welcome" << endl;

On the code snippet above, line 4 wont print "Welcome" to the console after the attempt to print str on line 3. Is there some behavior I should be aware of? If I substitute line 1-3 with cout << '\0' << endl; the message "Welcome" on the following line will be successfully printed to the console.

NOTE: Line 4 just silently fails to print. No warning or error message or anything (at least not using MinGW(g++) compiler). It spewed an exception when I compiled the same code using MS cl compiler.

EDIT: To dispel the notion that the code fails only when you assign str to '\0', I modified the code to assign to 0 - which was previously commented

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@BoBTFish Its not so much about the intention here. The question I asked is whether (or how) it faults the standard output such that after that attempt, subsequent use of cout wont do what you'd expect. What I have up here is just a snippet. Long story is that I was consuming a library, a certain function was meant to return an initialized string but was not (a bug obviously). So my worry had more to do with the state that the action of printing a null pointer leaves the standard output, since it affects even my own code that I would have expected to work –  John Gathogo Mar 29 '12 at 7:20
2  
Your code is just wrong. You mixed char and pointer to char. –  knivil Mar 29 '12 at 7:23

5 Answers 5

up vote 10 down vote accepted

If you insert a const char* value to a standard stream (basic_ostream<>), it is required that it not be null. Since str is null you violate this requirement and the behavior is undefined.

The relevant paragraph in the standard is at §27.7.3.6.4/3.

The reason it works with '\0' directly is because '\0' is a char, so no requirements are broken. However, Potatoswatter has convinced me that printing this character out is effectively implementation-defined, so what you see might not quite be what you want (that is, perform your own checks!).

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Bah, didn't see he was casting a character to a pointer! However, I don't think it's correct to say printing '\0' is safe; see my deleted answer. –  Potatoswatter Mar 29 '12 at 7:17
    
@Potatoswatter There's nothing wrong with printing '\0', as far as C++ is concerned. Some output devices may react particularly to it, but this is true for just about any character. –  James Kanze Mar 29 '12 at 7:19
    
@JamesKanze True about any control character, which is why they are allowed to have an unknown effect on the stream written to. –  Potatoswatter Mar 29 '12 at 7:23
    
@Potatoswatter I'd say true about any character. There are certainly devices which do something special when they receive the character 'a'. For that matter, what a device does with a character may depend on what came before, e.g. if it is part of an escape sequence. The most one can say is that there is an intended meaning for the characters in the basic character set, along with a few control characters like '\t' or '\n'. (Actually, '\n' is probably the most clearly defined.) –  James Kanze Mar 29 '12 at 7:37
    
There's of course isprint(char), and AFAICT POSIX specifies that isprint('\0') must be false but C doesn't. –  MSalters Mar 29 '12 at 8:38

Don't use '\0' when the value in question isn't a "character" (terminator for a null terminated string or other). That is, I think, the source of your confusion. Something like:

char const* str = "\0";
std::cout << str << std::endl;

is fine, where str points to a string which contains a '\0' (in this case, two '\0'). Something like:

char const* str = NULL;
std::cout << str << std::endl;

is undefined behavior; anything can happen.

For historical reasons (dating back to C), '\0' and 0 will convert implicitly to any pointer type, resulting in a null pointer.

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A char* that points to a null character is simply a zero-length string. No harm in printing that.

But a char* whose value is null is a different story. Trying to print that would mean dereferencing a null pointer, which is undefined behavior. A crash is likely.

Assigning '\0' to a pointer isn't really correct, by the way, even if it happens to work: you're assigning a character value to a pointer variable. Use 0 or NULL, or nullptr in C++11, when assigning to a pointer.

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I mentioned also that you get the same behavior if you do str = 0 so am not really sure if what you propose would work –  John Gathogo Mar 29 '12 at 7:23
    
The "behavior" that you get is undefined behavior; you're asking cout's operator<< to dereference a null pointer. I'm not surprised that line 4 doesn't work, because you're putting your program into a broken state with line 3. –  Wyzard Mar 29 '12 at 7:27
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You're confusing yourself by doing str = '\0' because that null character gets implicitly cast to a null pointer, and when you do cout << str you're invoking the operator<< that prints strings, not single characters. When you do cout << '\0' you're invoking the one that prints single characters, which is a completely different function that doesn't involve dereferencing any pointers. –  Wyzard Mar 29 '12 at 7:31

Just regarding the cout << '\0' part…

"Terminating the string" of a file or stream in text mode has an undefined effect on its contents. The C++ standard defers to the C standard on matters of text semantics (C++11 27.9.1.1/2), and C is pretty draconian (C99 §7.19.2/2):

Data read in from a text stream will necessarily compare equal to the data that were earlier written out to that stream only if: the data consist only of printing characters and the control characters horizontal tab and new-line; no new-line character is immediately preceded by space characters; and the last character is a new-line character.

Since '\0' is a control character and cout is a text stream, the resulting output may not read as you wrote it.

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Take a look at this example: http://ideone.com/8MHGH

The main problem you have is that str is pointer to a char not a char, so you should assign it to a string: str = "\0";

When you assign it to char, it remains 0 and then the fail bit of cout becomes true and you can no longer print to it. Here is another example where this is fixed: http://ideone.com/c4LPh

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