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In linux, to concatenate all files under a folder, you can do file=FOLDER/*; cat $file > ONEFILE, I also want to use this in my perl script so I coded like system("file=$folder/*"); system("cat \$file > $out");

But it won't work when I run the perl program, the $out was assigned a file name as my $out = "outfile";. The outfile always keeps at 0 bit. What's wrong here.

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I think I already know the problem. –  lolibility Jun 26 '12 at 17:21

2 Answers 2

up vote 1 down vote accepted

The first line sets the $file environment variable in a new shell process:

system "file=$folder/*";

The second line starts a new shell process with a new environment:

system "cat \$file > $out";

Since it's a new process, with a new environment, your previous $file variable is no longer set, so you are really running the following shell command:

cat  > $out

Do this instead:

system "cat '$folder/'* > '$out';

Note - I also added quotes, which will help if your paths may contain spaces. However, it's still not safe against all forms of input, so don't pass any user input to that command without validating it first.

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Yes, that's right! –  lolibility Jun 26 '12 at 17:26

What's about exec in Perl?

perl -e 'exec "cat *.txt"'

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