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I'm writing a Perl script to check and see if a module is currently installed for Apache. In Bash, I would use:

# httpd -M | grep fcgid
Syntax OK
fcgid_module (shared)

I want this to return a value of TRUE if that module exists and FALSE if it does not. I'm running into a problem though, because httpd -M always outputs "Syntax OK."

Here is what I 've got so far:

#!/usr/bin/perl
my $FCGID = "";
if (`httpd -M | grep fcgid`) {
$FCGID = "enabled"
} else {
$FCGID = "disabled"
}

The IF always evaluates as true though.

About my configuration:

x86_64 GNU/Linux
# cat /etc/redhat-release
CentOS release 6.2 (Final)
# httpd -v
Server version: Apache/2.2.15 (Unix)
# perl -v
This is perl, v5.10.1 (*) built for x86_64-linux-thread-multi

Open to suggestions. I'm pretty new at Perl and still kinda new at Bash scripting.

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2 Answers

perl 2>/dev/null -le 'my @list = qx(httpd -D DUMP_MODULES ); print "FCGI found" if ( grep { $_ =~ /fcgi/ } @list )  '
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+1. But why not use print "FCGI found" if grep /fcgi/, qx(httpd -D DUMP_MODULES);? –  flesk Jan 9 '12 at 7:08
    
Both of these still output "Syntax OK" =( Thanks for answering though! –  graypay Jan 9 '12 at 16:45
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It turns out I just need to redirect the output and I was confused about how to do that.

$ httpd -M 2> /dev/null | grep fcgid_module
fcgid_module (shared)

So in PERL, I can evaluate that BASH expression and save it into a variable and test against the variable in the IF statement.

my $FCGI = "";
my $FCGI_mod = `httpd -M 2> /dev/null | grep fcgid_module`;
if ( $FCGI_mod eq "" ) {
$FCGI = "disabled"
} else {
$FCGI = "enabled"
}

It's not the prettiest, but it does what I need it to.

Thank you to those who looked into it!

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