printf 0 with 0 precision

Question

I have being wondering why printf("%.d", 0); outputs nothing, whereas it outputs something for any other number than 0, and printf("%d", 0); outputs '0' as expected.

The only difference between the 2 codes is the precision. Here is what the documentation says about the precision :

An optional precision, in the form of a period . followed by an optional digit string. If the digit string is omitted, the precision is taken as zero. This gives the minimum number of digits to appear for d, i, o, u, x, and X conversions.

In that case the precision should just be ignored, no?

Answer 1

From the documentation (emphasis mine):

For integer specifiers (d, i, o, u, x, X): precision specifies the minimum number of digits to be written. If the value to be written is shorter than this number, the result is padded with leading zeros. The value is not truncated even if the result is longer. A precision of 0 means that no character is written for the value 0.

Don't know why though, probably has to do with the way C handles NULL pointers, or as @TripeHound pointed out, it could be a design decision.

Answer 2

Interesting thing that in alternate form (# flag) for x and X specifiers:

0x or 0X is prefixed to results if the converted value is nonzero.

For example, printf("a = %#.0x", 0); results in "a = "

But for o specifier:

In the alternative implementation precision is increased if necessary, to write one leading zero. In that case if both the converted value and the precision are ​0​, single ​0​ is written.

So, printf("a = %#.0o", 0); results in "a = 0"