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I'm attempting to pull files from a directory, compress them, and then display them on my web page. The files are direct uploads from my Digital Camera (when I'm travelling via my iPad) so I cannot shrink them on my computer.

Anyhow, I cannot for the life of me get this to work after many hours of scouring the net.

<?php

echo "<BR><BR>";
$dir = opendir('images/day1/'); 
while ($read = readdir($dir)) 
{

if ($read!='.' && $read!='..') 
{ 
echo $read;
exec( 'convert $read -quality 50 $output' );
echo "<BR>";
echo '<a href="images/day1/'.$read.'" TARGET="_BLANK"><img src="'.$output.'" WIDTH="800"></a>'; 
echo '<BR><BR>';
}

}

closedir($dir); 
?>

Any and all suggestions welcomed .... I simply cannot get the convert to work (assign a lesser quality then display the $output.

Thanks in advance

share|improve this question
2  
Why aren't you using the ImageMagick extension in PHP? –  Thomas Ingham Feb 22 '13 at 3:34
    
What are the symptoms? –  Dane Hillard Feb 22 '13 at 4:42
    
I have imagemagick (on shared server) but no access to imagick. My host said I need a VPS package to get it. If there is another way to read a directory of jpg's , compress them on the fly, and echo them onto my webpage .. I'm all ears. At the moment, I just cannot get the image to appear, at all ... –  Vacek Feb 22 '13 at 21:12
    
You have access to the convert executable but not the imagemagick php extension? Try using the full path of the "convert" executable –  SSH This Feb 22 '13 at 22:20

2 Answers 2

<?php 
$photo="sunflower.jpg"; 

$cmd = "convert $photo -quality 50 JPG:-"; 

header("Content-type: image/jpeg"); 
passthru($cmd, $retval); 
?>

On a page of its own and can only view the one image or you can have a

<img src="php_page_containing_above_code.php?photo=sunflower.jpg">

and have lots more images. Comment out the $photo variable at the top of the code and I can not remember the exact code at the moment and am at work so can not test it. I do not think you need $photo = $_GET['photo']; but again can not remember as I do not use this method.


Code example added when the OP said the first piece did not work.

Save this as image.php

<?php 
$photo = $_REQUEST['photo'];
$cmd = "convert $photo -quality 50 JPG:-"; 
header("Content-type: image/jpeg"); 
passthru($cmd, $retval); 
?>

Save this as whatever you want and run:

<?php
// Directory to read images from
$dir = "background/";

// Read the directory and sellect EVERYTHING
$filenames = glob( "$dir*" );

// Start the loop to display the images
foreach ( $filenames as $filename ) {

// Display the images
echo "<img src=\"image.php?photo=".$filename."\" />\n";
}
?>

Alternative code:

File 1 - resize images ( DO NOT RUN ON THE DIRECTORY MORE THAN ONCE OR ELSE YOU WILL DOUBLE THE AMOUNT OF THUMBS! )

// Read the directory and sellect jpg only
$filenames = glob("$dir*.{jpg,JPG}", GLOB_BRACE);

// Start the loop to resize the images
foreach ( $filenames as $filename ) {

// New name 
$name = explode ( '/', $filename );
$newname = $name[0]."/th_".$name[1];

//Resize and save in the same directory
//exec("convert $filename -resize 400x400 -quality 50 $newname");
}

?>

File 2 - Display images

// Read all the image files into an array that start with th_
$filenames = glob("$dir/th_*.{jpg,JPG}", GLOB_BRACE);

// Display the array contents
foreach ( $filenames as $value ){ echo "<img src=\"$value\"><br>"; }

?>

share|improve this answer
    
No luck with this either , images just do not appear. –  Vacek Feb 22 '13 at 21:13
    
The code in this answer works, you're doing something wrong. Make sure you have write permissions to the folder you're saving the image to. Also, try using the full path of "convert", or try simply exec'ing "convert" see if anything returns. Actually, now that I think about it, have you tried looking at the return value of your exec command? –  SSH This Feb 22 '13 at 22:21
    
ok, this works... or at least displays the images. I created the code above in a file called smashit.php and the file appears to be getting passed, and returned, and displayed properly ... however it does not compress the file size at all ... Maybe I'm misunderstanding the quality bit? My ultimate goal is for the file size to go from 2MB to something smaller so I can use the compressed images as thumbnails. –  Vacek Feb 22 '13 at 23:20
    
in addition, this just about turns the server into a BBQ as the CPU maxes out as does the memory ... –  Vacek Feb 22 '13 at 23:30
    
"in addition, this just about turns the server into a BBQ as the CPU maxes out as does the memory ... –" That is no supprise as that is the reason you do not do things "on the fly". What is your final goal; there is no point in saying I want it to do A then but it has to do B as well and then what I really want is C. –  Bonzo Feb 23 '13 at 10:11

1. Quotes

You use single quotes in this line:

exec( 'convert $read -quality 50 $output' );

This can not work, because the variables $read and $output won't be expanded in single quoted strings.

You could use either of the following solutions:

exec( "convert $read -quality 50 $output" ); // double quote string, expands variables
exec( 'convert ' . $read . ' -quality 50 ' . $output ); // single quoted string with concatenated variables

2. $output

You use $output in the exec() line, but you never fill that variable. It should contain the filename where you want convert to put your converted file.

3. Debugging

For debugging, you could also output the command you feed into exec():

$cmd = "convert $read -quality 50 $output";
echo $cmd;
exec($cmd);
share|improve this answer
    
I simply want to read all pictures in a specific directory, compress each one of them on the fly, and display them on my webpage ... all .jpg's ... I'm on a shared server so I do not have access to imagick or this would be simple. I tried the 2 lines above, but no luck. –  Vacek Feb 22 '13 at 20:54
    
I hope it rains every day of your holiday. –  Bonzo Mar 1 '13 at 16:25
    
@Bonzo: ??????? –  Kurt Pfeifle Mar 18 '13 at 18:06

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