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Say I have a unique file somewhere called file.ext. It is indexed by my Ubuntu box, so the command locate file.ext correctly gives me the (single) location, say /usr/local/some/place/file.ext.

So I thought that this:

locate file.ext | xdg-open

would open the file with the default application associated with the file type (there is one, that is not the problem), just as if I have entered xdg-open /usr/local/some/place/file.ext

Instead, I get the "usage" message coming from xdg-open, as if it was called without arguments.

So the question is: did I get something wrong about pipes? Or this some issue with that particular command?

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You are confusing standard input with program arguments. Part of the confusion probably stems from the fact the some programs will process either data read from standard input or data files whose names are given as arguments. xdg-open is not one of those programs, though. –  chepner Jun 15 '13 at 13:52
    
@chepner : Thanks for the tip. Actually, you are correct: as some programs accept both, I made the assumption that I could generalize to all. But after thinking about it, that can't be: from a dev. point of view, arguments are given through int main(int argc, char ** argv) which is not related in any way with stdin. –  kebs Jun 15 '13 at 15:13

1 Answer 1

up vote 5 down vote accepted

Because you have to pass filename as option, and not data on stdin. Use xargs for that:

locate file.ext | xargs xdg-open

or just subshell:

xdg-open "$( locate file.ext )"
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Thanks, just tested, both work. Now I also better understand the purpose of xargs ! –  kebs Jun 15 '13 at 15:15

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