Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a script that displays images based on certain conditions. When none of the conditions are met, I want to randomly display one of the standard (backup) images. Those other images are on a remote server. I have read that you can't read a directory on a remote server, which makes sense.

Is my best bet to place a file into the remote server's image directory that outputs all of the image file names so I can parse it with the other server? Is there an easier way?

I prefer not to use FTP (http://php.net/manual/en/book.ftp.php).

What are my options for basically just getting the names of the images in that folder?

Thanks, Ryan

UPDATE:

@mario's answer is lightweight and works like a charm. It is exactly the solution I thought I wanted, but after thinking about it some more, and reading that even @mario would do it differently, I decided to go with @bensiu's answer, because to me, control and security are more important than convenience. With @mario's method, it's very hard to know if the data you're getting is any good (lack of control) and you're exposing your directory / some server information (security). @bensiu's suggestion involves a second file (inconvenience), but provides the control and security I'm ultimately deciding to go with!

Thank you both!

-Ryan

share|improve this question

3 Answers 3

up vote 1 down vote accepted

I hope you at least have access to remote server...

You can place there script "A" that will do the job locally, return list of images in preffered format ( raw text, JSON, XML... ), and this script will be remotly called by curl form your server....

It also wise to make sure that when you call script "A" you at least passing some secret key to prevent unathorised access (not perfect solution but could be enought)

share|improve this answer
    
That definitely sounds like solid approach. I wanted to try to keep the remote server as uninvolved as possible, because I never know what kind of remote servers I will be dealing with in the future, but your approach still may be the best one from what I've seen so far. –  NightHawk Feb 4 '11 at 21:33

I would prefer an exact and dedicated handler script like @bensiu pointed out.

But an alternative would be to read out a directory listing. A simple Apache generated mod_index listing would be sufficient for:

$html = file_get_contents("http://example.com/images/");
preg_match_all('/<a href="([-\w\d.]+\.(jpeg|png|gif))"/', $html, $uu);
$files = $uu[1];
share|improve this answer
    
hmmm... are you sure that you will get list of files not default page in this folder ? –  bensiu Feb 4 '11 at 21:24
    
I tried this out and it didn't work for me :( –  NightHawk Feb 4 '11 at 21:29
    
@bensiu: Obviously you'll need to get rid of any stub or empty index.html, and if directory listings are disabled it's a no-go as well. One could configure it at an obscure location, but then a simple <?=json_encode(glob("*.jpeg"))?> script would be easier to setup there. –  mario Feb 4 '11 at 21:30
    
Directory listings are by default disabled, but I enabled them for that directory via an .htaccess file. –  NightHawk Feb 4 '11 at 21:34
    
@RyanS: Well, no idea with exact infos. Above snippet works for me, but the regex has to be relaxed for other filename variations. –  mario Feb 4 '11 at 21:40

if you have PHP5 and the HTTP stream wrapper enabled on your server, it's very easy and simple to copy it to a local file:

copy('http://somedomain.com/file.jpeg', '/tmp/file.jpeg');

ome hosts disable copy() function then you can make your own -

<?php 
    function copyemz($file1,$file2){ 
          $contentx =@file_get_contents($file1); 
                   $openedfile = fopen($file2, "w"); 
                   fwrite($openedfile, $contentx); 
                   fclose($openedfile); 
                    if ($contentx === FALSE) { 
                    $status=false; 
                    }else $status=true; 

                    return $status; 
    } 
?>
share|improve this answer
    
I am under impression tha he is asking for list of images - not coping image... –  bensiu Feb 4 '11 at 21:19
    
ultimately he wants to also display them . "When none of the conditions are met, I want to randomly display one of the standard (backup) images". this is there in question. –  ayush Feb 4 '11 at 21:21
    
in order to display you do not need to copy - link is enougth –  bensiu Feb 4 '11 at 21:26
    
To copy $file1 to $file2, I would have to know the path of $file1, which is what I'm trying to do. How did you get the path? –  NightHawk Feb 4 '11 at 21:29

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.