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While i am running the program below it outputs like 109876543210-1-2-3-4-5-6-78-9-10-11-12-and s0 on. Why so? What is the concept of unsigned integer?

 main ()
   {
      unsigned int i;
       for (i = 10; i >= 0; i--)
                 printf ("%d", i);
   }
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closed as not a real question by user7116, H2CO3, Andrey, netcoder, Jeremy Roman Mar 11 '13 at 16:20

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Btw the difference between signed int and unsigned int in c is for example in the way it does bit shifts, which effectively means wheter it uses sal/sar or shl/shr instructions. Else the number in the register looks the same. –  stupid_idiot Mar 11 '13 at 14:02
    
@stupid_idiot, also it affects comparison, multiplication (mul/imul), division (div/idiv) and propagation to larger types. Maybe something else, not quite sure. –  Aneri Mar 11 '13 at 14:07
    
There is nothing wrong with this question so it should not be closed as "not a real question". But due to the very basic nature, perhaps it is "too localized". –  Lundin Mar 11 '13 at 15:22

9 Answers 9

The %d format string treats the substituted value as int, which is signed.

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Why so?

Because your program has an undefined behavior (using %d which is for int to print an unsigned) - so you can expect anything to happen.

Why the infinite loop? Because an unsigned int is always >= 0.

What is the concept of unsigned integer?

It's an... unsigned integer. A whole number which is non-negative.

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@Virgile There is no conversion from unsigned to int in the statement printf("%d", u); any more than there is a conversion from float to int in the statement printf("%d", f);. 6.3.1.3 does not apply, and 7.19.6.1:8 says that the argument corresponding to %d should be an int. –  Pascal Cuoq Mar 11 '13 at 16:20
    
For a normal function call, a conversion would occur, but you're right, variadic functions behave differently, and 7.19.6.1§9 makes it clear that this is UB. I'm thus deleting the original comment. –  Virgile Mar 11 '13 at 17:08

Unsigned integers are always non-negative, that is greater than or equal to 0. When you subtract 1 from 0 in an unsigned integer type you end up with MAX_INT.

Therefore, your for loop will never terminate.

However, you need to use "%u" not "%d" in your printf if you want it to print the unsigned value rather than the signed value.

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I think you mean non-negative. 0U is definitely not positive. :-) –  R.. Mar 11 '13 at 14:58
    
@R.. Indeed. I'll edit, duh :-) –  Vicky Mar 11 '13 at 16:17

You use %d, so printf interprets the value as signed. Comparison to zero (>=0) of unsigned is always true.

So, while values are from 10 to 0, the output is ok (109876543210). After that the value becomes huge positive (maximum value, for 32bit int it is 0xFFFFFFFF). Comparison to 0 is true, so the loop continues. But in printf 0xFFFFFFFF produces -1 since %d is used. Then the loop continues to 0xFFFFFFFE which is -2 but still >= 0 as unsigned.

Use %u.

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yes here is this is the program and running on linux #include<stdio.h> int main() { unsigned int i; for (i = 10; i >= 0; i--) printf ("%d", i); return 0; } –  amitshree Mar 11 '13 at 14:00

printf can't know the type of the variable you give it, all it gets is the value (the bits themselves). You have to tell it how to interpret that value, and with %d you tell it to interpret it as a signed integer.

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You are using "%d" with printf() which is the format specifier for a signed integer.

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The declaration unsigned integer instructs the compiler to use unsigned operations on the variable. For example, the >> operator has different behavior on unsigned integers vs signed (specifically, whether it should preserve the sign bit).

To print an unsigned integer, you should use the %u formatting.

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when using '%u' in outputs like 10987654321042949672954294967294429496729342949672924294967291429496729... what does it it mean.i tried only to print from 10 to 0 unsigned numbers –  amitshree Mar 11 '13 at 14:11
    
Since you have no delimiters between your prints, what you actually see there is the numbers - 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 4967295,4294967294,4294967293... the numbers after and including the 11th number are due to your exit condition not being filled (unsigned integers are always >=0, so when you decrease them from 0 they roll over - you can read about it here) –  onon15 Mar 11 '13 at 15:29

Signed integers (we'll use 16 bit) range from -32768 to 32767 (0x8000 to 0x7FFF) while unsigned integers range from 0 to 65535 (0x0000 to 0xFFFF). So unsigned integers cannot have negative values, which is why your loop never terminates. However, you have told the print program to format the output as if it were signed (%d) so that you see the numbers formatted as negative values in your output. At some level, everything in a computer is just a string of bits that needs interpretation and your code example uses two different interpretations of the same bit patterns ... your unsigned int.

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Don't make assumptions about the bit width of unsigned and int. –  user529758 Mar 11 '13 at 14:01
    
No assumption on my part, that's why I said "we'll use 16 bit" as an example –  Steve Valliere Mar 11 '13 at 14:02

You should use %u as a format specifier in the printf, otherwise the value is casted to int.

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Why not %u... –  user7116 Mar 11 '13 at 14:03
    
@sixlettervariables haha sorry I meant %u –  Dan Mar 11 '13 at 14:09

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