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I got a code snippet in which there is a

printf("%.*s\n")

what does the %.*s mean?

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12  
Without additional arguments, that is not a valid printf call. –  Andrew Marshall Oct 26 '11 at 5:58

3 Answers 3

up vote 43 down vote accepted

You can use an asterisk (*) to pass the width specifier/precision to printf(), rather than hard coding it into the format string, i.e.

void f(const char *str, int str_len)
{
  printf("%.*s\n", str_len, str);
}
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1  
It should be noted that the str_len argument must have type int (or narrower integral type, which would be promoted to int). It would be a bug to pass long, size_t, etc. –  M.M Jul 7 at 22:03

I don't think the code above is correct but (according to this description of printf()) the .* means

The width is not specified in the format string, but as an additional integer value argument preceding the argument that has to be formatted.'

So it's a string with a passable width as an argument.

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2  
I've added the URL cross-reference so you can avoid charges of plagiarism. Of course, the correct quote says "The precision is not …" rather than "The width is not…". –  Jonathan Leffler Mar 30 at 4:52
    
As @MattMcNabb pointed out, every reference to that page must highlight that “an integer value” is exactly int (or a subset of it) — not just any integral value like more intuitive size_t or its possible aliases, like std::string::size_type. This is even more confusing, taking into account that the referenced page mentions size_t as one of supported type specifiers. –  Anton Samsonov Aug 4 at 18:04

See: http://www.cplusplus.com/reference/clibrary/cstdio/printf/

.* The precision is not specified in the format string, but as an additional integer value argument preceding the argument that has to be formatted.

s String of characters

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