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I have a function in location.php with this code:

    $isp = $ipInfo["isp"];
    $country = $ipInfo["country"];
    $state = $ipInfo["state"];
    $town = $ipInfo["town"];

    echo  "ISP: " . $isp . "<br>\n";
    echo  "Country: " . $country . "<br>\n";
    echo  "State: " . $state . "<br>\n";
    echo  "Town: " . $town . "<br>\n";

I have a file named test.php. If I use this code:

<?php
include('location');
    echo  "ISP: " . $isp . "<br>\n";
    echo  "Country: " . $country . "<br>\n";
    echo  "State: " . $state . "<br>\n";
    echo  "Town: " . $town . "<br>\n";
?>

inside test.php I get the following output:

ISP: dslb-094-219-040-096.pools.arcor-ip.net
Country: DE - Germany
State: Saarland
Town: Schiffweiler
ISP: 
Country: 
State: 
Town: 

The second ISP, country, state and town are in test.php and do not show anything and the first ones are inside location.php. The whole problem is, I can't use a variable created inside the function on the outside or in another php file. How can I use a variable on the outside? It has to do with global and scope?

Sorry if I am confusing, but it's almost 3:30 am and I am getting nuts

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marked as duplicate by Barmar, hjpotter92, andrewsi, Marc Audet, brasofilo May 23 '13 at 2:58

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers 3

up vote 1 down vote accepted

You can use the global keyword to do this

function my_func()
{
    global $isp,$country,$state,$town;
    //do stuff to variables
}
echo $isp.$country.$state.$town;

Something like that would work. Although a better option would probably be returning the variables in a return statement.

--edit--

Just made a working mockup

p1.php

<?php
function a()
{
    global $b,$c,$d;
    $b='hi';
    $c='bye';
    $d='what';
}
a();
?>

p2.php

<?php
include 'p1.php';
echo $b.$c.$d;
?>

There shouldn't really be any reason something like this wouldn't work for you.

share|improve this answer
    
I did this before posting. It did not work –  F4LLCON May 23 '13 at 1:32
    
@F4LLCON Edited my post with a tested and working script. Are you sure you executed the function before you tried to access variable? –  bluegman991 May 23 '13 at 1:48
    
Yes I've tested your code now and it works! I will go and cleanup my code –  F4LLCON May 23 '13 at 8:15

You shouldn't try to lift variables over include statements, it makes for messy code. include isn't like a function call.

Typically the kind of files you want to include are files that have just function or class definitions in them. And then you'll probably want to use include_once.

include can be useful for things like templates, where you might actually end up repeating the same file but for just PHP code: no.

The proper way would look like this:

// location.php
function printIPInfo($ipInfo) { // THIS is a function
    $isp = $ipInfo["isp"];
    $country = $ipInfo["country"];
    $state = $ipInfo["state"];
    $town = $ipInfo["town"];

    echo  "ISP: " . $isp . "<br>\n";
    echo  "Country: " . $country . "<br>\n";
    echo  "State: " . $state . "<br>\n";
    echo  "Town: " . $town . "<br>\n";
}

// test.php
include_once('location.php');
printIPInfo($ipInfo);
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I am not entirely sure why you are having problems

I often have a "Dim.php" file to define constant strings and then include using:

include("location.php");

Using the .php extension may fix your problem?

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