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While this may well be a stupid question, I saw something about how you shouldn't do this, despite the fact that it is allowed in C++ 11, but I don't quite get why. Could anyone explain why this is?

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Are you referring to this? –  chris Feb 21 '13 at 22:42
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Well it's const – is an immutable buffer useful to you? –  ildjarn Feb 21 '13 at 22:43
    
It is not allowed in C++11. –  juanchopanza Feb 21 '13 at 22:43
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@juanchopanza : Using std::string as a buffer is allowed in C++11, just by way of &str[0] rather than str.c_str(). –  ildjarn Feb 21 '13 at 22:44
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@RT_34, Undefined behaviour seems to work fine in many cases. In a couple of months, it then doesn't. –  chris Feb 21 '13 at 22:45

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up vote 5 down vote accepted

It's not allowed!

21.4.7 basic_string string operations[string.ops]

21.4.7.1 basic_string accessors[string.accessors]

const charT* c_str() const noexcept;
const charT* data() const noexcept;
  1. Returns: A pointer p such that p + i == &operator for each i in [0,size()].
  2. Complexity: constant time.
  3. Requires: The program shall not alter any of the values stored in the character array.

Other than that, you're modifying data references by a const char *, which usually indicates a const_cast<char*>. Not only will this result in undefined behaviour, but according to Herb Sutter const should be read as thread-safe nowadays (see his talk about const and mutable).

However, as it has been stated, the use of std::string str; &str[0] is safe if str is sufficiently large. Just don't use .c_str() or .data().

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The const_cast will cause undefined behavior only when a) casting away const-ness of an object that is const (rather than a reference that is const) and b) it is used to modify the object. The second part would be true, the first one depends on whether the string on which c_str() is called is const or not (and even if it is const, it might be that the buffer is still not const...). That being said, the better approach is using &str[0] –  David Rodríguez - dribeas Feb 21 '13 at 23:00

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