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string s;
s += '\0';
s += '\t';
if (s == "\0\t")
    cout << "Yahoo";

I can't get "yahoo".

And does it mean that if I want to check string like this, I have to code like this?

if (s[0] == '\0' && s[1] == '\t')
    cout << "Yahoo";
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Because a literal string can't contain \0. That's taken as the terminator. –  EJP Jul 23 '14 at 5:17
4  
@EJP it can contain \0 , the problem is when using the constructor std::string(char const *). For example, cout << "ab\0c"[3] <-- c –  Matt McNabb Jul 23 '14 at 5:19
    
If you want to check "strings" like that you need to use a vector<char> as by definition in C++ strings are zero-terminated. –  RedX Jul 23 '14 at 6:50
3  
@RedX: String literals. And no, you don't need vector<char> at all. Just pass the exact length instead of relying on the default ctor converting: if (s==std::string("\0\t", 2)) –  MSalters Jul 23 '14 at 8:20

2 Answers 2

up vote 22 down vote accepted

You are using the operator which compares a std::string with a const char*. In that function, the const char* is assumed to be pointing to a null-terminated (i.e. '\0') c-string. Since the '\t' comes after the terminator, the function does not consider it as part of the string, and in fact, would have no good way of even being able to figure out that it was there.

You could do this:

if (s == std::string("\0\t",2))

That will construct a std::string with the full string literal (minus the terminating '\0' that the compiler adds), and will compare your string with that.

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Thanks! That is what I need actually! –  Huang-zh Jul 23 '14 at 5:24

In addition to Benjamins answer. C++14 introduces string literals. It enables you to specify that a char sequence (like "a\0bc") should be treated as a string. You just have to you the s-suffix.

using namespace std::string_literals;

if (s == "\0\t"s)
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Thanks, it is cool, but I can't use this feature in my project for the constraint of compiler. –  Huang-zh Jul 23 '14 at 6:55

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