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I am developing an automation script in perl in which for authentication I have written a subroutine which takes password input by user and return it to the main perl program which in turn passes the password to the tool that I need to automate.

This script goes fine with every case unless the character # is part of the password. Then it is not able to automate the tool and fails for authentication.

Below is the subroutine which I used for taking password input.

use Win32::Console;

sub password() {
    $StdIn = new Win32::Console(STD_INPUT_HANDLE);
    my $Password = "";

    $StdIn->Mode(ENABLE_PROCESSED_INPUT);
    print "Enter Password: ";

    while (ord(my $Data = $StdIn->InputChar(1)) != 10) { 
        if("\r" eq $Data ) {
            last;
        }
        elsif ("\ch" eq $Data) {
            if( "" ne chop( $Password )) {
                print "\ch \ch";
            }
            next;
        }
        $Password .=$Data;
        print "*";
    }
    return $Password;
}

i am calling the above subroutine as

$passwd = &password();

And then passing the $passwd to the tool that I need to automate as below,

This is the line in which I pass the password to tool,

cc -c URL OF THE TOOL:$server -d $domain -t $appl -u $userid -p $passwd; \n"; 

Can anyone please cross check the code for calling the password() sub routine, returning $password and passing $passwd to the tool. I think error may be at one of the three places.Someone please help and if possible provide the code too.

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When you call the program with the # sign in the password, is the password quoted? # is the comment sign in perl. Can you show some code? –  simbabque May 7 '12 at 7:04
    
I have added the calling part now.please see. –  Gautam Kumar May 7 '12 at 7:06
    
You already said that the reading routine is working correctly. You should show us the part where you pass the password to another tool. –  Kilian Foth May 7 '12 at 7:51
    
This is the line in which I pass the password to tool, cc -c URL OF THE TOOL:$server -d $domain -t $appl -u $userid -p $passwd; \n"; –  Gautam Kumar May 7 '12 at 7:57
1  
@gautamkumar Apparently the shell does it. You should at least quote the password (or pass it as null-terminated string, if possible). –  Alois Mahdal May 7 '12 at 8:02

2 Answers 2

You are probably passing the user input to an external tool of some sort that doesn't support literal #, perhaps because it is interpreted as "start of comment". The shell is a likely suspect. But without sample code, it is impossible for us to be sure what your problem is.

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I have edited and given the code..please check. –  Gautam Kumar May 7 '12 at 7:01
    
What Kilian is saying is that the problem doesn't appear to be in this code. –  reinierpost May 7 '12 at 7:39
    
i have given all the required codes now.Please help friend. –  Gautam Kumar May 7 '12 at 8:02

It seems to me like issue with quoting on the shell side. Proper quoting rules are entirely dependent on your system's command shell. In bash, for example, you can often be fairly safe with something like -p '$password', while transliterating ' to \' in the Perl script. Or there could be a module for that, of which I'm not aware.

However, it's the "cc" thing you're passing data into. The tool could could support easier way to safely pass the password, i.e. avoid the need of quoting arbitrary data. Examples of such facilities are via STDIN, via external file (well that could be actually pretty unsafe :)) or as a null-terminated string. Or passing the hash only. So I'd look into the documentation.

Be aware that by passing user collected data into shell, you're posing a great security risk. Consider using Perl's Taint mode.

Update: You say it's Windows, so I should warn you: quoting for cmd.exe is one of the most complicated, painful and frustrating things I've ever done. Have a look at this question

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