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Does this change the way the values are stored or incremented at all within the enum? If they are the same, why do people define it as 0x000?

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5  
One's 0 in octal, the other's 0 in hex. Same number. –  chris Oct 22 '12 at 19:01
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@H2CO3 Nope: stackoverflow.com/questions/6895522/… –  Mysticial Oct 22 '12 at 19:02
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@Mysticial Well, this was somewhat of a shock for me. :) –  user529758 Oct 22 '12 at 19:07
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I think the reason they included that in the grammar was because if 0 wasn't an octal number it would be ambiguous grammar here: 0(decimal) and 0(octal). I mean how the hell do you represent 0 in octal and decimal? –  Aniket Oct 22 '12 at 19:07
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@H2CO3: There is no real flaw. It does not really matter whether the token '0' is considered to be a 0 encoded in octal or in decimal, in any case it is a literal of value 0. Try to rewrite the grammar so that '0' is not an octal literal and you will end up with an equivalent grammar that is slightly more complicated. –  David Rodríguez - dribeas Oct 22 '12 at 19:13

3 Answers 3

up vote 6 down vote accepted

No difference, it's just a readability thing. For instance, it indicates that the enumeration values are used in some sort of binary context, such as bitflags.

enum Flags {
    FLAG_NONE   = 0x0000,
    FLAG_READ   = 0x0001,
    FLAG_WRITE  = 0x0002,
    FLAG_APPEND = 0x0004,
    FLAG_TEXT   = 0x0008,
    FLAG_MEMMAP = 0x0010
};
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Exactly. I always use hex for bitflags. –  drescherjm Oct 22 '12 at 19:30

No.
0x0000 (append as many 0's as you want) is just 0 in hexadecimal.
Sometimes all your numbers in the enum are hexadecimal. Since there are all hexadecimal your just define the first one in hexadecimal too, because it looks cleaner.

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don't append beyond 8 zeros, enums are converted to integers internally. Overflow problem if the next number is taken as 0x0000000000000001 –  Aniket Oct 22 '12 at 19:09
    
@PrototypeStark not really. Enums are converted to whatever smallest type fits them. So, if you write 0x0000000000001, and you have a 64-bit integer type, then it's converted to that. –  user529758 Oct 22 '12 at 19:10
    
@H2CO3 Depends on your compiler. gcc will always use int if not modyfied with __attribute__((packed)) (if so the smallest possible type will be used). But 0x0000000000001 is just 1 in decimal so the size of the enum will be 1 byte. –  Coodey Oct 22 '12 at 19:17
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The number of zeros does not affect the type of an integer literal. The value is what matters. –  bames53 Oct 22 '12 at 19:17
    
@bames53 yep, well spotted - of course I meant 0x1000000000000000. –  user529758 Oct 22 '12 at 19:18

There is no difference for those specific values, they're exactly the same.

But for other values, remember that prepending 0 makes it an octal constant. This means you want to avoid using values like 000, 001, 002, 010, 044, etc (in an attempt to keep the length of the constants equal).

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