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Possible Duplicate:
How much is too much with C++0x auto keyword
The new keyword “auto”; When should it be used to declare a variable type?

In C++11, Typing a variable auto instead of, say, int, will let the compiler automatically use the right type, deduced from its initialization context. This comes super handy in situations where the type is obvious but boring to write. Are there pitfalls to be aware of, or reasons why someone would avoid using that?

  • In case the type you expect to get is the type of initializer expression, there should be no problems. The problem is, it's not what you sometimes expect. – Andrey Agibalov Dec 8 '11 at 11:14
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    ¤ One main pitfall is that auto allows you to hoist a private type out from some class. Typically such a type, e.g. a proxy, is not designed for being used for anything but some special purpose and in a special way. With C++03 one had to use nifty template trick to get access to such types, but with C++11 auto it is unfortunately very easy to do inadvertently... Cheers & hth., – Cheers and hth. - Alf Dec 8 '11 at 11:26
  • IMO I love using "auto" for iterators. I don't know if it's safe or not, but I haven't had problems with it. You just have to know what to expect. Although if you're using methods of a class that you initialised with auto, the compiler will probably alert you if the methods don't exist as it's not the right class. – Matej Dec 8 '11 at 11:26
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    the primary reason for adding auto was not for situations where the type is obvious and boring to write, it was added to help in situations where the type is not-obvious and tricky to write! – Scott Langham Dec 8 '11 at 11:32
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    Voted to reopen. The dangers do not seem to be discussed in those threads. Alf brings up a very important issue, and it should be addressed in a reply to this question. - Using auto can break programs by letting coders accidentally get hold of types they were never meant to see. – UncleBens Dec 8 '11 at 13:15
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My personal experience is auto is handy for generic code, or things like range-based for loop, but you might get something like

auto count = getCount();
if (count < 0) {
  // do something
}

If getCount() returns an unsigned number, instead of what you might be expecting (int), you won't even get a warning.

| improve this answer | |
  • You are right but actually if you replace auto by int you don't get a warning either. – log0 Dec 8 '11 at 11:31
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    GCC gives me a warning with -Wextra, which is a reason I always build with that frag (together with -Wall). – Some programmer dude Dec 8 '11 at 11:32
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    @Joachim Pileborg In this case you get the warning as well with auto. – log0 Dec 8 '11 at 12:35

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