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Currently trying to get my head round C++11 and have just discovered the auto keyword.

I was wondering with the use of auto which type would it default to given certain values.

For instance with an integer value of say 65535, would that default to an unsigned int, signed int, unsigned short etc? Or does it just remain as auto and not need to default to anything?

Any help is appreciated

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65535 is an int because that's an integer literal. Others can be specified through use of suffixes. –  chris Nov 16 '12 at 15:38
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up vote 11 down vote accepted

It doesn't "default" to anything. 65535 is an int, by definition, so auto is int in this case. For example, if you did 65535L, then it's a long, and auto would be a long.

Note that the above is considering a "typical" system. If 65535 is too large for int (perhaps maybe because int is 16-bits on this other system), the compiler will give it a larger type so that 65535 it "fits" into its own data type, (in this case, long), in which case auto becomes long. The exact rules regarding the type of an integer literal are given in section 2.14.2 of the standard (thanks Benjamin Lindley and James Kanze). The important part to remember, though, is that there are specific, clear rules as to what the type of something is, so auto never has to guess or "default" to anything.

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Cheers, that was I was expecting, but I just wanted clarification. Thanks –  const_ref Nov 16 '12 at 15:41
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On a system where int is 16 bits, it would be a long. –  Benjamin Lindley Nov 16 '12 at 15:45
    
@BenjaminLindley: Thanks, I'll edit. –  Cornstalks Nov 16 '12 at 15:48
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In other words, the compiler is not free to promote it to another integral type. The constant has a very definite integral type. There's no freedom involved, and no promotion either, in the sense the standard uses promotion. –  James Kanze Nov 16 '12 at 15:59
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@Cornstalks: See paragraph 2 of the same section. Paragraph 3 refers to extended integer types. But extended integer types don't come into play here. Extended types are implementation defined integer types. For example, an implementation may have an int128_t, though such is not required by the standard. 65535 is guaranteed to be able to fit in a long, which is a standard integer type, not an exended integer type. Extended integer types only come into play when standard integer type options are exhausted. –  Benjamin Lindley Nov 16 '12 at 16:24
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