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Is -5 an integer literal? Or is 5 a literal, and -5 is an expression with unary minus taking a literal as an argument? The question arose when I was wondering how to hardcode smallest signed integer values.

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How about INT_MIN from <climits> for "smallest signed integer"? –  Arun Oct 12 '10 at 21:53
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Or, since it's tagged C++, how about std::numeric_limits<int>::min()? –  Praetorian Oct 12 '10 at 21:56
    
I looked in climits. #define INT_MIN (-2147483647 - 1) Interesting :) Thanks –  Armen Tsirunyan Oct 12 '10 at 21:56
    
@Michael: Discard my deleted comment that it is not a literal, since, as I understand, no negative value can be represented by a literal :) –  Armen Tsirunyan Oct 12 '10 at 22:02
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@Green Code - because it makes assuptions about how the system stores negative integer values, i.e. one's complement or two's complement or other... –  Armen Tsirunyan Oct 16 '10 at 18:57

2 Answers 2

up vote 9 down vote accepted

It's a unary minus followed by 5 as an integer literal. Yes, that makes it somewhat difficult to represent the smallest possible integer in twos complement.

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@Jerry Coffin: If types 'long' and 'unsigned long' are 32-bits, would a standards-conforming compiler regard -2147483648 as an unsigned long equal to 2147483648, an error, or Undefined Behavior? –  supercat Oct 12 '10 at 22:45
    
@supercat: in C++ it's undefined, but then in C++ with the sizes you specify, 2147483648 is undefined (2.13.1/2) - you must provide a suffix 2147483648u or get help from your implementation. You'd hope that the compiler will do you a favour, and treat 2147483648 as an unsigned long, or maybe a long long if supported, or an error if all else fails: but it doesn't have to. In C99 (again with those sizes), -2147483648 is a negative long long. I think in C89 it's an unsigned long, causing no end of entertainment when migrating from one to the other. –  Steve Jessop Oct 12 '10 at 23:46
    
In C99 with 32-bit int, -2147483648 has type unsigned int and its value is 2147483648. There is no reason it would become long long because 2147483648 fits in unsigned int, and then the unary negation operator is applied to it. –  R.. Oct 13 '10 at 2:22
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@R.: In C99, without the u suffix, a decimal integer constant never has an unsigned type (at least that's what the table at 6.4.4.1/5 says; is there somewhere else that says otherwise?) –  James McNellis Oct 13 '10 at 4:38
    
@R.: @James McNellis: At least in C89, decimal constants do not become unsigned //unless// there is no signed type large enough to hold them; hexadecimal constants are signed //unless// they fall between the range of the maximum signed value of a certain size and the maximum unsigned value of that size. @Steve Jessop: In C99, what would be the effect of -9223372036854775808 in the source, if long long is 64 bits? –  supercat Oct 13 '10 at 14:38

As Jerry Coffin said, the minus sign is not part of the literal. As for how to solve your ultimate question,

I was wondering how to hardcode smallest signed integer values

That's what INT_MIN (and the like in limits.h or stdint.h or wherever) is for.

If you look at how INT_MIN is defined, it'll probably look something like (-2147483647 - 1) to work around the problem raised by the question.

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Thanks. I already did. Actually I am not running into any problem. I was just wondering :)) –  Armen Tsirunyan Oct 12 '10 at 22:00
    
@Armen: Understood. I guess I should say "the problem raised by the question" then. –  Michael Burr Oct 12 '10 at 22:19

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