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 main()
{
    unsigned x=1;
    char y=-1;

    if(x>y)
          printf("x>y");
    else
        printf("x<=y");
}

I expected x>y. but when i changed unsigned int to signed int, i got expected results.

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char y=-1; it should throw an error i think it should be char y='-1' instead –  Devjosh Jul 2 '11 at 7:35
    
@Devjosh, no you are wrong. '-1' is not a valid character. –  taskinoor Jul 2 '11 at 7:38
    
@Devjosh: '-1' throws a warning because it's actually '-' and '1' combined, not the number "-1". The latter is ignored. –  Lekensteyn Jul 2 '11 at 7:39
2  
@Devjosh No, actually i'm putting value (not ASCII) in signed char datatype (-128 to 127). –  Furqan Jul 2 '11 at 7:39
    
ok thanks @taskinoor and Lekensteyn got it :) –  Devjosh Jul 2 '11 at 7:40

2 Answers 2

up vote 9 down vote accepted

If char is equivalent to signed char:

  • char is promoted to int (Integer Promotions, ISO C99 §6.3.1.1 ¶2)
  • Since int and unsigned have the same rank, int is converted to unsigned (Arithmetic Conversions, ISO C99 §6.3.1.8)

If char is equivalent to unsigned char:

  • char may be promoted to either int or unsigned int:
    • If int can represent all unsigned char values (typically because sizeof(int) > sizeof(char)), char is converted to int.
    • Otherwise (typically because sizeof(char)==sizeof(int)), char is converted to unsigned.
  • Now we have one operand that is either int or unsigned, and another that is unsigned. The first operand is converted to unsigned.

Integer promotions: An expression of a type of lower rank that int is converted to int if int can hold all of the values of the original type, to unsigned otherwise.

Arithmetic conversions: Try to convert to the larger type. When there is conflict between signed and unsigned, if the larger (including the case where the two types have the same rank) type is unsigned, go with unsigned. Otherwise, go with signed only in the case it can represent all the values of both types.

Conversions to integer types(ISO C99 §6.3.1.3):

Conversion of an out-of-range value to an unsigned integer type is done via wrap-around (modular arithmetic).

Conversion of an out-of-range value to a signed integer type is implementation defined, and can raise a signal (such as SIGFPE).

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Edited: mental lapse due to lack of sleep. –  ninjalj Jul 2 '11 at 9:35
1  
+1 detailed and correct answer. (And because I almost always +1 decent correct answers when the accepted answer is wrong.) –  R.. Jul 2 '11 at 13:43

When using signed and unsigned in single operation the signed got promoted to unsigned by C's automatic type conversion. If the bit patter of -1 is considered an unsigned number then it is a very very high value. So x > y is false.

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1  
@taskinoor: It doesn't matter what the bit pattern of -1 is "considered as an unsigned number", it's the value that matters when it is converted to an unsigned type. –  Charles Bailey Jul 2 '11 at 7:42
    
@Charles Bailey, that's what I meant. May be my language is not good enough. –  taskinoor Jul 2 '11 at 7:44
3  
@taskinoor: When you talk about the bit pattern of -1, it seemed to me that you were implying that the implicit promotion from char to unsigned depends on the underlying representation of a char in the implementation (e.g. two's complement) which is not correct. –  Charles Bailey Jul 2 '11 at 7:53
    
-1 read as a unsigned char is 255. –  ShinTakezou Jul 2 '11 at 8:13
1  
-1 bit pattern is irrelevant. Conversion to unsigned is an arithmetic operation not a bit-pattern-reinterpretation. –  R.. Jul 2 '11 at 13:41

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