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Analyze the following code... 'int i' is declared as unsigned but the compiler does not give error and gives output as -121 (Range of unsigned int is positive.) Please suggest the reason.

#include<stdio.h>
#include<conio.h>
void main()
{
    clrscr();
    unsigned int i=-121;
    printf("%d",i);
    getch();
}
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2 Answers 2

up vote 1 down vote accepted

As far as I know, the %d is used for signed int values, and now if you want to use it with unsigned value, you cannot use %d as it will display the signed integer value stored at that memory location. Try %u. It should work.

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1  
Thanks man... It worked. Also it is not required to declare the int as 'unsigned'. –  user1627919 Aug 27 '12 at 17:48
1  
@user1627919 you should declare the variable as the type that you intend to use and be sure to use the correct format specifier in the format string. The reason printf doesn't care what you declared it as is because printf is not type safe. printf assumes the parameter is the type that is indicated by the format specifier and will treat it as such. Some compilers may give you a warning but printf("%s", i) will happily assume i is a char pointer and crash your program. –  Dave Rager Aug 27 '12 at 18:42
    
Yes, that too. @dave: +1 –  UnderDog Aug 27 '12 at 18:45

By definition, an unsigned int cannot be negative (that is what "unsigned" means). If you want to store a negative value in i, that line should read int i=-121;

See wikipedia

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