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std::string test("this is a test string");
test[0] = 'b';

like the code above, part of the string has been changed, will the compiler generate a new string or do the modification on the old one?

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7 Answers 7

up vote 10 down vote accepted

test[0] will return a non-const (since the string object is non-const) reference to a first character which would be successfully replaced with b character.

Look the reference.

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No, you are modifying the old one. If you want a string object read only, you need const

std::string const test("this is a test string");
test[0] = 'b'; // compile error.
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It worth mentioning that declaring object as const doesn't make it truly read-only as you state it since constness could be cast away. –  Kolyunya Jul 17 '13 at 7:55
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@Kolyunya but it would be undefined behaviour to perform any non-const operations on it. –  juanchopanza Jul 17 '13 at 7:58
    
@juanchopanza thank you for an information, I did not know that! 7.1.5.1/4: Except that any class member declared mutable (7.1.1) can be modified, any attempt to modify a const object during its lifetime (3.8) results in undefined behavior. –  Kolyunya Jul 17 '13 at 8:02
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@Kolyunya If the original object is not const, then it is not UB. So you can have void foo(const& string s1); and string s; foo(s); and then do a const_cast inside of foo and call non-const methods. It would be confusing and error prone, but not UB because s is not const. So maybe some of those hacks you have seen are "OK". –  juanchopanza Jul 17 '13 at 8:11
    
@juanchopanza I see now... Thank you for an explanation. The one example I can remember is a class-member getter returning a const-reference to a non-const member. The reference constness was cast away and non-const operations were applied. And so it was perfectly legal as it comes out. –  Kolyunya Jul 17 '13 at 8:19

You will modify existing string.

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According to the documentation the operator[] will return a reference on the character at this index.

If the string object is const-qualified, the function returns a const char&. Otherwise, it returns a char&.

If you string is constant you will not be able to modify it, else you will be able to change the original string

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The test std::string will become "bhis is a test string" since you can change it. The string literal "this is a test string" used to construct the string will not change.

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The constructor of string will copy the character array. The second line will modify that copy.

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Actually there's no string the constructor could copy; it will copy the character array into the newly created string. –  celtschk Jul 17 '13 at 7:49
    
I consider an array of char to be a C-style string. But, I will change the text anyways. –  Ralph Tandetzky Jul 17 '13 at 8:05

C++ std strings are mutable and they are changeable. In this case, string will undergo a modification instead of instantiating a new string object.

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