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What are the rules for the escape character \ in string literals? Is there a list of all the characters that are escaped? In particular, when I use \ in a string literal in gedit, and follow it by any three numbers, it colors them differently. I was trying to create a std::string constructed from a literal with the character 0 followed by the null character (\0), followed by the character 0. However, the syntax highlighting alerted me that maybe this would create something like the character 0 followed by the null character (\00, aka \0), which is to say, only two characters.

For the solution to just this one problem, is this the best way to do it:

std::string ("0\0" "0", 3)  // String concatenation 

And is there some reference for what the escape character does in string literals in general? What is '\a', for instance?

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Related, on how to escape an escape sequence. The best solution is to use concatenation as you had. –  MPelletier Apr 19 '12 at 1:31
    
If you need a single ` just use \`. –  MPelletier Apr 19 '12 at 1:32
    
It looks like I can also use the initializer list syntax: std::string { '0', 0, '0' }; –  David Stone Apr 19 '12 at 4:49
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Not only can I use the initializer list syntax, I now highly recommend it over any other method of constructing a string that requires you to specify a size or uses escaped characters. Consider the subtle undefined behavior outlined in stackoverflow.com/questions/164168/… –  David Stone Oct 14 '12 at 17:02
    
I realize now my comment at 1:32 is completely obfuscated... I have no idea what I meant... –  MPelletier Oct 14 '12 at 22:14
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4 Answers

up vote 2 down vote accepted

\0 will be interpreted as an octal escape sequence if it is followed by other digits, so \00 will be interpreted as a single character. (\0 is technically an octal escape sequence as well, at least in C).

The way you're doing it:

std::string ("0\0" "0", 3)  // String concatenation 

works because this version of the constructor takes a char array; if you try to just pass "0\0" "0" as a const char*, it will treat it as a C string and only copy everything up until the null character.

Here is a list of escape sequences.

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All of the answers were good, but I decided to accept this one because of the cppreference link and I was able to read this once and understood it, whereas I had to reread the other answer with the link just to make sure I got it. It was a pretty hard choice, though. –  David Stone Apr 23 '12 at 4:54
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Control characters:

  • \a = alert (bell)
  • \b = backspace
  • \t = horizonal tab
  • \n = newline (or line feed)
  • \v = vertical tab
  • \f = form feed
  • \r = carriage return

Punctuation characters:

  • \" = quotation mark (backslash not required for '"')
  • \' = apostrophe (backslash not required for "'")
  • \? = question mark (used to avoid trigraphs)
  • \\ = backslash

Numeric character references:

  • \ + up to 3 octal digits
  • \x + 2 hex digits
  • \u + 4 hex digits (Unicode BMP, new in C++11)
  • \U + 8 hex digits (Unicode astral planes, new in C++11)

\0 = \00 = \000 = octal ecape for null character

If you do want an actual digit character after a \0, then yes, I recommend string concatenation. Note that the whitespace between the parts of the literal is optional, so you can write "\0""0".

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In the case of \x, the hex digits will be read 'greedily' until the first non-hex digit (that is, not limited to 2 as you might expect, and as some syntax highlighters do assume). You can use the @dan04 trick of splitting strings to mark the end of the hex: "\x0020" "FeedDadBeer" rather than "\x0020FeedDadBeer". –  Rhubbarb Sep 4 '12 at 10:24
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\a is the bell/alert character, which on some systems triggers a sound. \nnn, represents an arbitrary ASCII character in octal base. However, \0 is special in that it represents the null character no matter what.

To answer your original question, you could escape your '0' characters as well, as:

std::string ("\060\000\060", 3);

(since an ASCII '0' is 60 in octal)

The MSDN documentation has a pretty detailed article on this, as well cppreference

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That example uses the constructor string (const char * s), which treats s like a C string. OP's example uses string (const char * s, size_t n), which treats it like an array of characters. –  eli Apr 19 '12 at 1:47
    
@eli Perchance did you see my answer before I edited it? –  jli Apr 19 '12 at 2:02
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I left something like this as a comment, but I feel it probably needs more visibility as none of the answers mention this method:

The method I now prefer for initializing a std::string with non-printing characters in general (and embedded null characters in particular) is to use the C++11 feature of initializer lists.

std::string const str({'\0', '6', '\a', 'H', '\t'});

I am not required to perform error-prone manual counting of the number of characters that I am using, so that if later on I want to insert a '\013' in the middle somewhere, I can and all of my code will still work. It also completely sidesteps any issues of using the wrong escape sequence by accident.

The only downside is all of those extra ' and , characters.

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