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I'm developing a script that when given some information, will create Filezilla Server users, a folder in my HTDocs folder, and a MySQL user and database.

For some reason, a the variable $mysqlpass stays blank even though I've made certain that the variable is spelled correctly.

I'm checking to see if the user entered in an Input field using empty(). Is this correct, or should I be using isset()?

This is the source

This is the output for "blahhh" as the Apache folder, with nothing else filled in (besides the MySQL Admin information).You can see in the output that $mysqluser works fine but the password is blank.

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which var is blank? – Dagon Mar 12 '11 at 3:29
@alex @Dagon Sorry, it's $mysqlpass – Derek Maciel Mar 12 '11 at 3:33
please post the code if possible, it will be better for people to dive into your code... – Avinash Mar 12 '11 at 3:44
Is it blank even when you enter something in the password field on the form? – Mark Eirich Mar 12 '11 at 3:52

2 Answers 2

up vote 2 down vote accepted

It's blank in your 2nd example because you're using elseif's - meaning that another condition is satisified before it gets a chance to default the password to the username. Break all of those out into individual if statements and you should be good.

Edit: sorry, should have read better - reexamining. But they should be individual ifs anyway.

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First of all: are you sure that you are passing the variable through the correct POST key "mysqlpass". Just in case, you are not aware, the firebug plugin for Firefox is very good for this (just open up the console tab).

Secondly: you can use PHP's var_dump($mysqlpass) to see exactly what the variable referencing. This will at least give some more information to go on.

Hopefully one of these two methods will help you further troubleshoot this problem.

Also, as stated, you may wish to turn your if/else ladder on line 32 into a series of if statements so they are all accounted for (thus fixing your second problem and "blahhh" example).

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