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I'm working with two files - a.php which contains the class Background, and b.php which includes a.php . *In a.php , out of the class scope , there's a echo statement " background check" .

When I load b.php , I can see the output "background check" , but when I try to create a background object the next warning message appears :

Fatal error: Class 'Background' not found in ....

Here's a code sample from b.php :

<?php
        include ('http://localhost/wT/sf/a.php');
        $url2="http://www.google.com";
        $b = new Background($url2);
?>
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What does a.php look likke? –  Ryan B Jul 24 '12 at 13:35
    
It is not possible includen a url –  David Jul 24 '12 at 13:37
    
It is if the URL returns only source code. It's bad practice, but it can be done. –  Crontab Jul 24 '12 at 13:37
    
Does include from urls even work? –  Ron Jul 24 '12 at 13:50

5 Answers 5

If the output of http://localhost/wT/sf/a.php (in a web browser) isn't PHP source code, then your include will not work. You probably (in your case) have to include the file from the filesystem, not through an HTTP address.

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The include function returns the next error : failed to open stream: No such file or directory –  Itamar Jul 24 '12 at 13:43
    
Might want to make sure the document root is listed in include_path. Then, just include stuff relative to it. –  cHao Jul 24 '12 at 13:49
    
Or just use the file's absolute path to include it. –  Crontab Jul 24 '12 at 14:39

Use relative routes for the includes, not a URL.

In other words, the file that you are including has to be on the same server (or able to be accessed on the same server) as the file that you are including it in.

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The include works though , becuase I can see the output of the echo statement from a.php ...the problem is that I can not create the object I've created in a.php –  Itamar Jul 24 '12 at 13:38
    
Loading php-executable content by url may work, but it is wrong by concept –  Ron Jul 24 '12 at 14:35

You are using web-url instead of use system path like

<?php
        include ($_SERVER['document_root'].'/a.php');
        $url2="http://www.google.com";
        $b = new Background($url2);
?>
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better include dirname(__FILE__).'/a.php'; –  Ron Jul 24 '12 at 14:33

Try something like this to make this work:

<?php
        include ('/var/www/wT/sf/a.php'); //your filesystem location to a.php
        $url2="http://www.google.com";
        $b = new Background($url2);
?>
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Include using the filesystem location does not work : here's the file location : wT/sf/a.php –  Itamar Jul 24 '12 at 13:41
    
please post content of a.php to better help you –  Kalpesh Jul 24 '12 at 13:49
    
the file location can't be wT/sf/a.php, there should be something liek /var/www/.. what is your server's root directory? –  Kalpesh Jul 24 '12 at 13:50
    
xampp\htdocs\wT –  Itamar Jul 24 '12 at 15:36
    
so the path should be something like "C:\xampp\htdocs\wT\sf\a.php".. –  Kalpesh Jul 24 '12 at 15:46

In include method you should use relative file path

Files are included based on the file path given or, if none is given, the include_path specified. If the file isn't found in the include_path, include will finally check in the calling script's own directory and the current working directory before failing. The include construct will emit a warning if it cannot find a file

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