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Actually I've (probably) a "simple" problem. So I don't know how to cast a signed integer to an unsigned integer.

My code :

signed int entry = 0;
printf("Decimal Number : ");
scanf("%d", &entry);
unsigned int uEntry= (unsigned int) entry;
printf("Unsigned : %d\n", uEntry);

If I send the unsigned value to the console (see my last code line), I always get back an signed integer.

Can you help me?

Thanks a lot!

Kind regards, pro

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2 Answers

up vote 9 down vote accepted
printf("Unsigned : %u\n", uEntry);
//                 ^^

You must use the %u specifier to tell the printf runtime that the uEntry is an unsigned int. If you use %d the printf function will expect an int, thus reinterpret your input back to a signed value.

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Hi Kenny, Thanks for your answer. If I set the %u specifier, I will get for -13 an unsigned value of 4294967283. What's the problem. Thanks. –  pro Sep 29 '10 at 20:08
    
There's no problem. That is the unsigned representation of the bits of your variable. –  Juri Robl Sep 29 '10 at 20:33
2  
@pro: When your format specifier doesn't match the type of the value you are printing, the behavior is undefined and the results are meaningless. I.e. when you print -13 with %u the results are meaningless. As well as your original attempt to print an unsigned value with %d. Always use the correct format specifier, if you want your output to make sense: %u for unsigned int, %d for signed int. –  AndreyT Sep 30 '10 at 0:34
1  
@pro: -13 is out of range for unsigned int. When you convert an out-of-range number to an unsigned type, it is brought into range by repeatedly adding or subtracting one more than the maximum value of the type - in this case, UINT_MAX + 1, which is 4294967296 on your platform, is added to -13 to give 4294967283. –  caf Sep 30 '10 at 2:12
    
Hi guys, thank you for your answers and comments. It was very useful! –  pro Oct 6 '10 at 13:08
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Append these two lines at the end of your code, and you would understand what is going on.

printf("entry: signed = %d, unsigned = %u, hex = 0x%x\n", entry, entry entry);
printf("uEntry: signed = %d, unsigned = %u, hex = 0x%x\n", uEntry,uEntry,uEntry);
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While it may be informative in explaining how your particular implementation works, both of these calls result in undefined behavior. You have to provide the correct types to printf according to what you specified in the format string in order for the results to be well-defined. –  R.. Sep 30 '10 at 1:52
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