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When I convert a char* to std::string using the constructor:

char *ps = "Hello";
std::string str(ps);

I know that std containers tend to copy values when they are asked to store them. Is the whole string copied or the pointer only? if afterwards I do str = "Bye" will that change ps to be pointing to "Bye"?

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they have assignment operators overloaded and actually if i am guessing correctly they would use copy and swap algorithm. and a temporary string object will be created from char*. –  Koushik May 8 '13 at 11:29
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@Koushik: you're guessing wrong. Making a shallow copy here would be counterintuitive and prone to errors. –  Violet Giraffe May 8 '13 at 11:33
    
@VioletGiraffe yes i realise the pointer is not copied and there is a deep copy and there should be an internal buffer to hold this. –  Koushik May 8 '13 at 11:36
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Don't assign string literals to char*, always use const char*. String literals are not supposed to change. –  Sebastian Redl May 8 '13 at 12:03
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char *ps = "Hello"; should be const char *ps = "Hello"; –  Peter Wood May 8 '13 at 12:05

2 Answers 2

up vote 14 down vote accepted

std::string object will allocate internal buffer and will copy the string pointed to by ps there. Changes to that string will not be reflected to the ps buffer, and vice versa. It's called "deep copy". If only the pointer itself was copied, and not the memory contents, it would be called "shallow copy".

To reiterate: string performs deep copy in this case.

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str will contain a copy of ps, changing str will not change ps.

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