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This question already has an answer here:

Can someone explain what the purpose of the # sign in this printf statement:

printf("%#d\n",15);

It seems to be ignored while printing. The output of the statement is:

15

marked as duplicate by Sourav Ghosh c Jul 29 '15 at 8:23

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You can look in the printf documentation. You can find the description for # under flags:

Used with o, x or X specifiers the value is preceded with 0, 0x or 0X respectively for values different than zero. Used with e, E and f, it forces the written output to contain a decimal point even if no digits would follow. By default, if no digits follow, no decimal point is written. Used with g or G the result is the same as with e or E but trailing zeros are not removed.

  • The cited part doesn't contain anything about hash. What should this be helpfull for? – dhein Jul 29 '15 at 7:58
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    @Zaibis: the cited part is talking about the effects of the # flag in the format specifier. – Michael Burr Jul 29 '15 at 8:00
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I didn't come up with this answer myself. I just did a quick Google search and found this:

"Adding a # will cause a '0' to be prepended to an octal number (when using the o conversion specifier), or a 0x to be prepended to a hexadecimal number (when using a x conversion specifier). For most other conversion specifiers, adding a # will simply force the inclusion of a decimal point, even if the number has no fractional part."

You can read more here: http://www.cprogramming.com/tutorial/printf-format-strings.html

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