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I'm trying to printf unsigned short in hex, e.g. 0XFFFF. The problem is that I want a lowercase x not X. I have no idea how to do this.

fprintf(c,"%#06X,\n\t", pixel[i]));
  • And the C++ tag just slipped in ... – too honest for this site Mar 19 '16 at 3:30
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    %X is the wrong type specifier for unsigned short and `pixel[i] is the wrong type, too. – too honest for this site Mar 19 '16 at 3:32
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    pixel[i] is unsigned short array. – Joedie 123 Mar 19 '16 at 3:36
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    I already presumed that. Still you pass an int. Just read about integer promotions and read the printf man-page resp. documentation resp. definition in the C standard. – too honest for this site Mar 19 '16 at 3:38
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    No, it is not. Why don't you read the documentation of functions you use? The information is available online. Oh, and about the 0x: That is not possible automatically (I dislike this, too). But there is an obvious and simple solution. Remember you can have normal text in the format string, too. – too honest for this site Mar 19 '16 at 4:21
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Change the %X specifier to %x and you should get lower case:

fprintf(c, "%#06x\n", pixel[i]);

Outputs the number as 0xffff. If pixel is an array of unsigned shorts and you want the format to match the data, you can do:

fprintf(c, "%#06hx\n", pixel[i]);

If you really want 0xFFFF, then that's trivial:

fprintf(c, "0x%04hX\n", pixel[i]);
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    I suspect OP just wants the the x lowr case as he states in the question. Note that the argument has to be unsigned int to avoid implementation defined behaviour, which requires a cast. – too honest for this site Mar 19 '16 at 22:56
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    There is no implementation defined behavior concerns here with or without a (unsigned) cast. "0x%04hX" is certainly what OP is looking for. – chux Mar 20 '16 at 0:54
  • @chux - I kind of feel your comment is the best answer given the short datatype and hex formatting. – jww Jun 5 '18 at 20:10

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