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I am trying to print the array but the out put contain only the last line of the array. the partial code is as follow.

open OUT, "> /myFile.txt"
    or die "Couldn't open output file: $!";

foreach (@result) {

    print OUT;
}

the out put is

List Z

which is the last line, but when I do print "@result" the out put is

List A

List B

List C  so on...

I am little bit confuse why the results are different on the same array.

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3 Answers 3

up vote 2 down vote accepted

the problem is here

open OUT, "> /myFile.txt"

this should be

open OUT, ">>", "/myfile.txt"

What you wrote overwrites the entire file for each iteration of the foreach(@result) loop. What you are intending to do is append to it (">>"). ">>" appends, ">" overwrites.

Also take note of how i broke ">> /myfile.txt" into ">>", "/myfile.txt". This is both more secure, and more robust for less specific applications of open.

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very..very interesting...that's it. solved! thank you so very much. –  eli1128 Sep 19 '12 at 13:38
1  
This would be the correct diagnosis if the open statement was inside the for-loop. If it is, then the correct solution is to move the open statement outside, not by using append mode for each iteration. –  TLP Sep 19 '12 at 14:56
    
TLP, you are right. I have a feeling the open statement is nested within an even larger block, and he is expecting each iteration of that larger block to print out a different list he has stored in @result. Thank you for showing me where I was wrong, TLP. :) –  protist Sep 19 '12 at 17:37

Working on a hunch, I tried adding \r to the end of your input lines, and sure enough, it creates the illusion that only the last line of your input is printed to the file. Here's the code to test it:

use strict;
use warnings;

my @result = map "$_\r", 'A' .. 'Z';

open (OUT, "> myFile.txt") or die("Couldn't open output file: $!");
foreach (@result) {
    print OUT ;
}

What you have probably done is performed chomp on lines from a file from a different operating system (DOS, Windows), which does not strip the \r line endings. Hence, when the lines are printed, the lines overwrite each other.

If this is what is wrong, the solution is to use the dos2unix tool to fix your files, or to use:

s/\s+\z//; 

to strip your newlines.

You may inspect your input by using the Data::Dumper module, using the option Useqq, e.g.:

use Data::Dumper;
$Data::Dumper::Useqq = 1;
print Dumper \@result;

If these whitespace characters are in your output, they will then be visible.

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thanks, you nail the problem, the input came from webpage and has white-space character. I have tried to strip out per you suggestion but still the last line is printed. –  eli1128 Sep 18 '12 at 19:36
    
Did you try printing the lines with Data::Dumper to see the whitespace? –  TLP Sep 18 '12 at 19:39
    
yes Sir, printed like this $VAR1 = [ "list\t200\r\n", undef ]; –  eli1128 Sep 18 '12 at 19:45
    
Then you didnt try s/\s+\z// because those chars would have been stripped then. –  TLP Sep 18 '12 at 20:01
    
I did foreach (@result) { s/\s+\z//; print Dumper \@result; and the result came with this modification –  eli1128 Sep 18 '12 at 20:08

Foreign line terminators from any platform can easily be fixed by clearing whitespace from the end of the line and adding it back when printing it

Like this

open my $out, '>', '/myFile.txt' or die "Couldn't open output file: $!";

foreach (@result) {
  s/\s+$//;
  print $out "$_\n";
}

or

foreach my $line (@result) {
  $line =~ s/\s+$//;
  print $out "$line\n";
}
share|improve this answer
    
thanks much,I have used your suggestion but still the problem didn't go. –  eli1128 Sep 18 '12 at 19:33
    
I can't imagine why. The substitution will remove all carriage returns and linefeeds from the end of the string. If you have used a different variable for the loop then you need to use that explicitly in the substitution. I have added to my answer to demonstrate this –  Borodin Sep 18 '12 at 19:41

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