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I have a list of images within a file. The file name along with details about the image are stored in a mysql table. I have created a while loop that randomly generates several images on my page. There is a problem however. My webpage is not producing any images. I have narrowed it down to the function I created clothing_data. I'm just stumped at what I need to do. Here is the code below.

<?php
function clothing_data ($id) {
    $data = array();
    $id = (int)$id; 
    $func_num_args = func_num_args();
    $func_get_args = func_get_args();   
    if ($func_num_args > 1) {   
        unset($func_get_args[0]);
        $fields ='`' .  implode ('`, `', $func_get_args) . '`';
        $data = mysql_fetch_assoc (mysql_query("SELECT $fields FROM `dress` WHERE `primary_id` = $id"));
    return $data;
    }
}

$num_dresses = dress_count ();

$i = 0;    
while ($i < 5)
{   
    $rand_id = rand(1, $num_dresses);
    $dress_feed_data = clothing_data($rand_id, 'file_name', 'user_defined_name', 
'user_defined_place' , 'user_who_uploaded');
    echo $dress_feed_data['file_name'];
    if (file_exists('fashion_images/' . $dress_feed_data['file_name']))
    {
?>

<br>
<img src="fashion_images/<?php echo $dress_feed_data['file_name'];?>" width="50" height="50" />
<?php
    }
    $i++;
}
?>
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1  
Careful about mysql_ functions... they're deprecated, and you're open to SQL injection. –  Waleed Khan Jul 18 '12 at 2:54
    
Thanks for the heads-up. I'm sure there is a lot I can fix on this code. One step at a time. –  jason328 Jul 18 '12 at 2:57
    
Why are you passing additional parameters to clothing_data when it only accepts $id. –  user1416258 Jul 18 '12 at 4:42
    
Because each parameter (which is a name of a column in my table dress) allows me to pull that field connected to the primary id or $id. Make sense? –  jason328 Jul 18 '12 at 4:48
    
Yeah, it just confused me for a sec. –  user1416258 Jul 18 '12 at 4:56
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4 Answers 4

In your <img> tag $dress_feed_data[file_name] should be $dress_feed_data['file_name'].

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Still does not work. Thanks for the help though. –  jason328 Jul 18 '12 at 4:36
    
What's not working. Is the page at least rendering? –  user1416258 Jul 18 '12 at 4:43
    
The page is rendering I just do not see the actual images. No errors. I checked to see if the file exist function within the if statement works and it does. I suspect it has to do with the line of code that has the img tag. –  jason328 Jul 18 '12 at 4:50
    
I would just have a play around with what echo $dress_feed_data['file_name']; puts out to try and get the URL right. –  user1416258 Jul 18 '12 at 4:57
    
Will do. Thanks for the help. –  jason328 Jul 18 '12 at 6:26
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Most likely $field is either empty or contains a wrong column name or other error. What do you get when you var_dump()?

Since you already defining the columns in $dress_feed_data = clothing_data($rand_id, 'file_name', 'user_defined_name', 'user_defined_place' , 'user_who_uploaded');

you could simply just change your function to something like-

function clothing_data ($id, $field1, $field2, $field3, $field4) {
    $data = array();
    $id = (int)$id; 
    $func_num_args = func_num_args();
    $func_get_args = func_get_args();   
    $fields ='`' .  $field1 . '`, `' .  $field2 . '`, `' .  $field3 . '`, `' .  $field4 . '`';
        $data = mysql_fetch_assoc (mysql_query("SELECT $fields FROM `dress` WHERE `primary_id` = $id"));
   return $data;
}
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I ran var_dump($dress_feed_data); and was returned with bool(false) 5 times. –  jason328 Jul 18 '12 at 6:25
    
What do you get if you put var_dump($field) within function clothing_data()? –  Sean Jul 18 '12 at 6:45
    
If I understand you correctly, I took out the var_dump() which was in the while loop and then put var_dump($fields); into the clothing_data function. The bool(false) disappears and returns to the original issue, that no image is shown except five icons each showing a page torn in half. There are no errors. –  jason328 Jul 18 '12 at 7:07
    
I think $dress_feed_data['file_name'] is empty. Try changing $data = mysql_fetch_assoc (mysql_query("SELECT $fields FROM dress WHERE primary_id = $id")); -- TO -- $data = mysql_fetch_assoc (mysql_query("SELECT $fields FROM dress WHERE primary_id = $id")) or die(mysql_error()); –  Sean Jul 18 '12 at 7:07
    
I didn't receive a mysql error but the rest of the script died. Is there a problem with the query then? –  jason328 Jul 18 '12 at 7:14
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make sure that $dress_feed_data['file_name'] contains file extension(.jpeg, png.. etc) also

<img src="fashion_images/<?php echo $dress_feed_data['file_name'];?>"
 width="50" height="50" />

EDIT

1=> <img src="fashion_images/abc.gif" width="50" height="50" />

or

2=> <img src="fashion_images/abc" width="50" height="50" />

check which one your getting

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The image in my folder does not have the file extensions after the name. Is this what your referring to? Outside of that I did your suggestion and nothing changed. Thanks for the help. –  jason328 Jul 18 '12 at 6:27
    
@jason328: Once check your img src <img src="fashion_images/abc.gif" width="50" height="50" /> or <img src="fashion_images/abc" width="50" height="50" /> first one will work second one will not –  MR Srinivas Jul 18 '12 at 8:04
    
I checked to see which img tag worked. Both did. That being said the images in my folder do not have file extensions attached at the end. I have used this code in a similar fashion elsewhere in my site and had no problems with it. –  jason328 Jul 18 '12 at 18:48
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up vote 0 down vote accepted

I fixed the problem. There were multiple issues involved. For one my primary id was not linked up to the randomly generated ids that were inside my database. The other reason it was not working was because the fields relating to the name of my filename were not the same ones found in my images folder. This is because when the name of the file is inserted into my database a space is added to the name making it impossible to link the name on my database to the name in my folder. Thanks for all the help guys.

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