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Sorry for the probably basic question, but I'm trying to understand some code and I can't understand what this (%016llx) placeholder means.

I understand that %x is HEX coding, and to the best of my knowledge the numbers in between should be the number of digits and the 0 padding; but I cannot decode the 016ll sequence, and googling didn't helped so much more than showing an example in which it was somehow related to gcc.

Given that I'm a nearly-zero-experience programmer, can you help me?

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3 Answers 3

up vote 4 down vote accepted

The description of fprintf() in the C99 Standard tells us that the %016llx conversion specification is made up of

  1. the mandatory % character
  2. a 0 flag for padding
  3. the 16 as "minimum field width"
  4. the ll as "length modifiers"
  5. the x conversion specifier

So, in whole it means to write a unsigned long long int in hexadecimal notation occupying a minimum of 16 positions, padded with 0.

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The ll indicates that the argument will be interpreted as a long long int of the appropriate signedness. The x indicates hexadecimal, the 0 indicates that the output will be zero-padded, and the 16 is the width of the number to be printed.

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The ll (ell-ell) stands for long long. You are right about the rest, it means:

  1. Take the long long numer (from the stack)
  2. Format it as a hexadecimal numer on 16 places with zero-padding on left.
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+1 for the spelling, as at first glance I've read 11 (one-one) –  clabacchio Mar 2 '12 at 10:32

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