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I am just learning C and I have a little knowledge of Objective-C due to dabbling in iOS development, however, in Objective-C I was using NSLog(@"%i", x); to print the variable x to the console however I have been reading a few C tutorials and they are saying to use %d instead of %i.

printf("%d", x); and printf("%i", x); both print x to the console correctly.

These both seem to get me to the same place so I am asking the experienced developers which is preferred? Is one more semantically correct or is right?

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5 Answers 5

up vote 10 down vote accepted

They are completely equivalent when used with printf(). Personally, I prefer %d, it's used more often (should I say "it's the idiomatic conversion specifier for int"?).

(One difference between %i and %d is that when used with scanf(), then %d always expects a decimal integer, whereas %i recognizes the 0 and 0x prefixes as octal and hexadecimal, but no sane programmer uses scanf() anyway so this should not be a concern.)

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Thanks :) So more just a developer's preference? –  Dummy Code Jun 26 '13 at 20:20
1  
@HenryHarris Yes, but if you take my advice, you use %d ;) –  user529758 Jun 26 '13 at 20:20
    
You seem to know what you're doing. Might as well take advice from the best. ;) –  Dummy Code Jun 26 '13 at 20:20
3  
This may be extremely late, but what is wrong with using scanf()? –  Spellbinder2050 Sep 28 '14 at 21:12

d and i conversion specifiers behave the same with fprintf but behave differently for fscanf.

As some other wrote in their answer, the idiomatic way to print an int is using d conversion specifier.

Regarding i specifier and fprintf, C99 Rationale says that:

The %i conversion specifier was added in C89 for programmer convenience to provide symmetry with fscanf’s %i conversion specifier, even though it has exactly the same meaning as the %d conversion specifier when used with fprintf.

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%d seems to be the norm for printing integers, I never figured out why, they behave identically.

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All the answers are correct but I am just adding example here. Because I think understanding by example is very easy.

In printf() they behave identically so you can use any either %d or %i. But they behave differently in scanf().


For example:

int main()
{
    int num,num2;
    scanf("%d%i",&num,&num2);// reading num using %d and num2 using %i

    printf("%d\t%d",num,num2);
    return 0;
}

Output:

enter image description here

As you can see different results for identical inputs. Firstly consider num, we are reading num using %d so when we enter 010 then it simply ignores first 0 and consider it as decimal. Now in case of num2, we are reading num2 using %i that means it will treat decimals,octals,hexadecimals differently. In our example when we give 010 then it parses it as octal. Hence when we try to print it using %d then it prints the decimal equivalent of octal number 010 that is 8.

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Upvoting you, but I'd have preferred to see a complete answer rather than patchwork over another answer (which is exactly what the StackOverflow project is fighting against) –  vog Apr 1 at 8:58

both %d and %i can be used to print an integer

%d stands for "decimal", and %i for "integer." You can use %x to print in hexadecimal, and %o to print in octal.

You can use %i as a synonym for %d, if you prefer to indicate "integer" instead of "decimal."

On input, using scanf(), you can use use both %i and %d as well. %i means parse it as an integer in any base (octal, hexadecimal, or decimal, as indicated by a 0 or 0x prefix), while %d means parse it as a decimal integer.

check here for more explanation

why does %d stand for Integer?

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