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I have a perl script that always returns yesterday's date and the date is stored on a variable called $yesterday

Now, I am running that perl script using cmd prompt. After it figures out what yesterday's date was I would like to pass $yesterday somehow into the cmd line so that it can open up a "$yesterday.txt" file. The txt files are already there and match the date format in the filename.

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Are you asking how to open a file? –  TLP Jun 12 '13 at 14:49
    
If you're using Linux, you can use GNU date program to generate a date on the command line. For example, date -d "-1 days" +%Y-%m-%d to generates yesterday's date in YYYY-MM-DD form. –  doubleDown Jun 12 '13 at 15:20
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2 Answers

Are you asking how to open a file?

my $file = "$yesterday.txt";
open my $fh, "<", $file or die "Cannot open $file for reading: $!";

See the documentation for more information on the open command.

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I still get the access denied error –  summerNight Jun 12 '13 at 15:28
    
Well, there you go then. Perhaps you should check the permissions on the file. –  TLP Jun 12 '13 at 16:24
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You can simply include the $variable in the string of the command or use string concatenation to put the static and variable parts together:

system("echo yesterday >$yesterday.txt");

or

system("echo yesterday >" . $yesterday . ".txt");

The above calls a commandline program or command from perl and the command includes the value of your $yesterday variable.

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I get an "access denied" error if I try to access the .txt file using the System() method. However, I can still access the text file using command prompt manually. –  summerNight Jun 12 '13 at 15:24
    
show us your source file. –  michael Jun 12 '13 at 18:54
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