0

I am sorry for posting a dodgy code! :( But I'm terrible at writing PHP (just started learning) and I certainly need to study it more. But for the moment, I really need this script working so I can showcase my artwork. :) I was wondering if someone would be able to help correct it?

Basically I am getting image file names from a .txt file. The txt file is set up like this:

1|imagefilename1.jpg

2|imagefilename2.jpg

The idea of the code below is to change an element depending on the file. For example, if the file is a .mov file, it will load a video player (the videos stream from vimeo). And if it's an image file, it will have a slideshow.

<?php

$photos=file("photos.txt");
$img = array('jpg', 'png', 'gif');
$vid = array('swf', 'mp4', 'mov', 'mpg', 'flv');
foreach($photos as $image){
$item=explode("|",$image);

$ext = explode(".", $image);
if(in_array($ext[1], $img))
{'<div id='thejqueryslider'><div class='slider'><img src='images/work/$photo' alt='' /> </div></div>'}
 elseif(in_array($ext[1], $vid))
 {'<iframe src='$photo' width='800' height='450' frameborder='0' webkitAllowFullScreen allowFullScreen></iframe>'}

 ?>
1

One obvious error is you've forgotten to add echo statements where you want to output stuff. You should also use double quotes instead of single ones around the HTML you're outputting, otherwise the single quotes inside it terminate the string and cause syntax errors. Finish that with semicolons at the end of the echo statements and your code should work.

if(in_array($ext[1], $img))
{ echo "<div id='thejqueryslider'><div class='slider'><img src='images/work/$photo' alt='' /> </div></div>"; }
 elseif(in_array($ext[1], $vid))
 { echo "<iframe src='$photo' width='800' height='450' frameborder='0' webkitAllowFullScreen allowFullScreen></iframe>"; }

EDIT: You also have an unmatched curly bracket opened after the foreach, you'll probably want to close it after the echo statements.

ANOTHER EDIT: You are using the variable $photo which is not defined. Did you mean $item[1]?

1
  • Thanks for the help! Unfortunately it doesn't work though because I haven't defined $photo in the code at all ($photo is from my previous script with the working slideshow)... – Jess Oct 28 '11 at 17:23

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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