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Unsigned and signed comparison
unsigned int and signed char comparison

I have a strange behavior when i try to enter in this while statement:

unsigned u = 0;
int i = -2;

while(i < u)
{
    // Do something
    i++;
}

But it never enters, even if when i set a break point i = -2 and u = 0. What am I doing wrong? How could i fix this?

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marked as duplicate by Jens Gustedt, undur_gongor, Lundin, dsolimano, ChrisF Jun 1 '12 at 13:50

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2 Answers 2

up vote 6 down vote accepted

It's because the ANSI C standard defines that whenever there is a comparison between a qualified (your unsigned int u) and a non qualified type (your int i), the non qualified type gets promoted to a type of the same type (thus always int), but also inherits the qualifiers of the other quantity (i.e. it becomes unsigned).

When your int, whose value is equal to -2, becames unsigned the first byte undergoes this transformation: 0000 0010 -> 1111 1110. Your int is now a very large positive number, certainly larger of your unsigned int.

There is a solution: cast to signed

while(i < (signed) u)
{
    // Do something
    i++;
}

By the way, probably your compiler should give you a warning.

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Thanks, +1 for the solution with a complete explanation. –  Nick Jun 1 '12 at 12:07
    
Would it work if you defined i as signed int i? –  Alex Chamberlain Jun 1 '12 at 12:15
    
By default, if we do not specify either signed or unsigned most compiler settings will assume the type to be signed, so in this case signed int i has the same effect of int i and the result is the same. –  gliderkite Jun 1 '12 at 12:27
    
@gliderkite: Are you sure? In C "qualified types" are e.g. const int, volatile char. unsigned/signed are not qualifiers (but type specifiers). Then there is: unsigned a; signed int b; a < b; where b is converted to unsigned int. All C compilers will assume a signed type because this is what the standard defines (except for char). –  undur_gongor Jun 1 '12 at 12:32
1  
Your vocabulary and description are just wrong. "qualified" in the standard refers to const and volatile. What is going on here is something more subtle, namely implicit conversion. And the rules for that are not so direct as you suggest. I suggest that you delete your answer. –  Jens Gustedt Jun 1 '12 at 12:33
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You are comparing a signed and unsigned integer and your problems started there...
Don't do that and it should work just fine.

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