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For my program, I'm attempting to replace the value of a specific hash in an external file with a newly created value. The external file has the value tab-delimited from the key, and I had read the hash in from the external file. I've been looking around online, and this is the closest way I could figure out how to do it, yet it doesn't seem to work.

            open(IN, ">>$file") || die "can't read file $file";
            while (<IN>) {
            print IN s/$hash{$key}/$newvalue/;
            }
           close (IN)

I'm not quite sure what I'm missing in this formula.

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Seems a bit weird to call the output filehandle IN but whatever... :) –  Keltia Dec 18 '08 at 22:02

4 Answers 4

up vote 4 down vote accepted

Tie::File can fix this for you.

use Tie::File;

tie @array, 'Tie::File', $file or die "Could not tie $file: $!";

for (@array) {
    s/$hash{$key}/$newvalue/;
}
untie @array;
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You are trying to read and write to the same file, that is not going to work. You have to read, substitute then write in another file. Afterwards, you can replace the input file by the one you've just written if you really want one file.

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Ah, I see. Then is there a way that I can simply append to a value in an external file? That's all I need, I just expected that substitution could accomplish that task. –  John Dec 18 '08 at 22:07
    
That's just a variation on the same problem so you'll get the same answer. It is actually a FAQ for Perl. –  Keltia Dec 18 '08 at 23:19

This won't be efficient, but it should work, unless my perl-fu is bad:

open(IN, "<<$file") || die "can't read file $file";
open(OUT, ">>${file}.tmp") || die "can't open file $file";
while (<IN>) {
    print OUT s/$hash{$key}/$newvalue/;
}
close(IN);
close(OUT);
exec("mv ${file}.tmp $file");

There might be a command to do the move for you in perl, but I'm not a perl guy.

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I find that approach interesting, I know you're not a perl person but if you know, would the new file have all the content of the original file just with the necessary parts substituted? –  John Dec 18 '08 at 22:11
    
Yes it will because if the substitution does not occur because the value is not found, then $_ is unchanged then gets written to OUT –  Keltia Dec 18 '08 at 22:15
    
BTW, the function you want is rename(OLD,NEW) –  Keltia Dec 18 '08 at 22:16
    
For some odd reason, it's telling me it can't read the file now. –  John Dec 18 '08 at 22:22
    
Use unlink and rename (rename old spare; rename new old; unlink spare). –  Jonathan Leffler Dec 18 '08 at 23:09

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