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I am pretty new to C. I recently came across this piece of code in C:

#include <stdio.h>

int main()
        unsigned Abc = 1;
        signed Xyz = -1;

        return 0;

I tried running it and it outputs "Less". How does it work? What is the meaning of unsigned Abc? I could understand unsigned char Abc, but simply unsigned Abc? I am pretty sure Abc is no data type! How(and Why?) does this work?

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Even though the "int as default type" behavior is part of the C standard, it's typically preferred if you explicitly write unsigned int instead of letting the compiler fill it in for you. It's less error-prone and easier to read (as evidenced by your confusion here). – bta Sep 17 '10 at 19:18

8 Answers 8

up vote 1 down vote accepted

The default type in C is int. Therefore unsigned is a synonym for unsigned int.

Singed integers are usually handled using twos complement. This means that the actual value for 1 is 0x0001 and the actual value for -1 is 0xFFFF.

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Lets not forget 25 years of i386... – Matt Joiner Sep 18 '10 at 11:19

Two things are happening.

  1. The default data type in C in int. Thus you have variables of type signed int and unsigned int.

  2. When and unsigned int and a signed int are used in an expression the signed int is converted to unsigned before the expression is evaluated. This will cause signed(-1) to turn into a very large unsigned number (due to 2's complement representation).

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As far as I know, the signed value gets promoted to an unsigned value and so becomes very large.

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int is the "default" type in C. unsigned Abc means unsigned int Abc just like long L means long int L.

When you have an expression that mixes signed and unsigned ints, the signed ints get automatically converted to unsigned. Most systems use two's complement to store integers, so (unsigned int)(-1) is equal to the largest possible unsigned int.

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Comparing signed and unsigned types result in undefined behavior. Your program can and will print different results on different platforms.

Please see comments.

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Can't find the actual link just now, but my understanding is that int promotion (signed to unsigned in this particular case) is well defined. But be that as it may, it's not intuitive to a beginner. – Detmar Sep 17 '10 at 19:25
@Detmar: ah... hmmm must check the standard. It may be different for C and C++ though. If I recall correctly, nothing (or little?)is told about binary representation of signed integers, that is what makes me think it is UB. – Alexandre C. Sep 17 '10 at 20:22
-1: No, this is well defined behavior. What is happening, and this is normative in C, is what Darron describes in his answer. – Jens Gustedt Sep 18 '10 at 6:33
@Jens: Conversion from signed to unsigned is implementation specific behavior. Nothing enforces the use of 2-complement. – Alexandre C. Sep 18 '10 at 15:24
@Alexandre: not at all. Conversion from signed to unsigned is well defined in the standard. It is done modulo 2^N where N is the width of the unsigned target type. Which comes out to be the two's complement representation of the signed value if it fits in the unsigned. To summarize, no a signed integer is not necessarily in two's complement, but yes a signed that is converted to an unsigned has exactly the same bit pattern as in two's complement representation. – Jens Gustedt Sep 19 '10 at 7:20

unsigned/signed is just short specification for unsigned int/signed int (source), so no, you don't have variable with "no data type"

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The signed value will get promoted to unsigned and therefore it will be bigger than 1.

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Add the following line after signed Xyz = -1;

printf("is Abc => %x less than Xyz => %x\n",Abc,Xyz);

and see the result for yourself.

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Even better would be to use %u for the formats. – Jens Gustedt Sep 18 '10 at 6:34

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