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I am new to C++, I encountered this oddity with const std::string assignment

This works fine: const std::string hello = "Hello"; const std::string message = hello + " world";

This gives compiler error: const std::string message = "Hello" + " world";

I do not understand why this is, anyone ?

Thanks

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2 Answers 2

up vote 2 down vote accepted

There is no operator + defined that takes two pointers of type const char* and returns a new array of characters containing the concatenation of the strings they point to.

What you can do is:

std::string message = std::string("Hello") + "world";

Or even:

std::string message = "Hello" + std::string("world");
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To be pedantic, they are not const char*, they are const char[6] and const char[7]. –  Jesse Good Jun 22 '13 at 21:57
    
@JesseGood: Right, the string literals are arrays, indeed. But when passed as arguments to an operator overload, wouldn't they decay to pointers? –  Andy Prowl Jun 22 '13 at 21:58
    
Yes, the do decay to const char* when passed to the overload. I was thinking of the types with "Hello" + " world" since there is no overload involved, but reading over what you said again, it is not incorrect (sorry for the noise :)). –  Jesse Good Jun 22 '13 at 22:00

To concatenate literal strings, you don't need to put extra + between them, just put them together without any operator will perform the concatenation:

std::string message = "Hello" "world";
printf("%s\n", message.c_str());

and the above code will give you:

Helloworld
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