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I have a file A with content like this:

/filea
/fileb
/filec
/filed

And I have a script xyz.pl to read one file and do something with it

Now I want to provide each of the line in file A as argument to xyz.pl automatically. Effectively following commands are execute (in that order)

xyz.pl /filea
xyz.pl /fileb
xyz.pl /filec
xyz.pl /filed

Is there any quick one-liner-command to do that ?

share|improve this question
    
Why not add some functionality to xyz.pl instead so you can pass a file name as argument, or receive arguments from STDIN? –  TLP Jan 5 '12 at 14:09
    
It's not my program, so I don't want to mess with the code. –  w00d Jan 5 '12 at 14:13
2  
Are you forbidden from making a copy of the program and rewriting the input function? –  TLP Jan 5 '12 at 14:40
    
I have reason not to do so. Of course you can open a black box to edit it, but what if other people are using it and you break some other parts of your system ? –  w00d Jan 5 '12 at 18:52
1  
I don't know your situation, so I can't really say what you should or should not do. If xargs does it for you, good for you. Me personally, I am a person who in all situations looks for the perfect solution, and in this case, the perfect solution is to alter the original script. –  TLP Jan 5 '12 at 19:01

4 Answers 4

up vote 4 down vote accepted

Use xargs with -n option

cat A | xargs -n 1 xyz.pl
share|improve this answer
    
simple enough for my use. thanks –  w00d Jan 5 '12 at 14:05

A one-liner in bash.

$ for f in `cat A`; do xyz.pl $f; done
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1  
It's probably a good idea to add a check for failure in there, aborting the loop if one of the iterations fails. –  Donal Fellows Jan 5 '12 at 13:52
2  
avoiding use of cat, and incorporating Donal's suggestion: while read arg; do xyz.pl "$arg" || break; done < A –  glenn jackman Jan 5 '12 at 15:52

You can use xargs. What that should do is take in each line of 'file A' (taken from cat) and execute the command given (xyz.pl) with that data as an argument.

cat 'file A' | xargs -I{} xyz.pl '{}'

That says that {} is where the argument should go, and puts it in after xyz.pl. It makes it more flexible in case you wanted to change the command in the future.

Note, this solution as given will only work assuming each filename doesn't have spaces.

Edit: Wait, it seems to work with spaces for me...

Edit: In case this doesn't work in all instances, here's an example:

xyz.pl:

#!/usr/bin/perl
print "Perl processing: $ARGV[0]\n";

one.txt

/filea
/fileb
/filec

Running:

$ cat one.txt | xargs -I{} ./xyz.pl '{}'
Perl processing: /filea
Perl processing: /fileb
Perl processing: /filec
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1  
this will not pass lines as args one by one –  Pradeep Jan 5 '12 at 13:37
    
@Pradeep: It seems to in my example... –  Dan Fego Jan 5 '12 at 13:53
    
your code with I option will work, I had posted before you had edited I guess :P –  Pradeep Jan 5 '12 at 14:02
    
thanks for trying... an up vote for more general cases, a bit complex for my case –  w00d Jan 5 '12 at 14:06

Perl one-liner would suffice:

perl -lnwe 'print qx(xyz.pl $_)' fileA.txt

Explanation:

  • -l -- autochomp each line, add newline to print (to avoid inconsistencies with newlines)
  • -n -- implicit while(<>) { .. } loop around program
  • qx() -- execute command in shell and return standard output

Although the best option would no doubt be to alter your xyz.pl script to also accept arguments in the form of standard input. It is hard to say how you would do that, since I don't know how you process arguments. Then it would be a simple matter of:

perl xyz.pl < fileA.txt

Or with some options from e.g. Getopt::Long

perl xyz.pl -f fileA.txt    # file as argument
perl xyz.pl /foo            # simple argument
share|improve this answer
    
Would the downvoter care to explain? –  TLP Jan 6 '12 at 12:00

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