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 am trying to do something easy I am sure but I have looked and tested and I am not doing something right. I have a DB that stores the image file name, I need to get the file name based on the ID in the HTML , let me explain:

 <div class="slide">
                    <div class="image-holder">
                       <img src="img/asoft_table.jpg" alt="" /> 
                    </div>
                    <div class="info">

                        <p>Morbi a tellus lorem, id scelerisque ligula. Maecenas vitae turpis et.</p>
                    </div>
                </div>
                <div class="slide">
                    <div class="image-holder">
                        <img src="img/soft_table.jpg" alt="" />
                    </div>
                    <div class="info">

                        <p>Sed semper, lorem ac lobortis bibendum, magna neque varius augue, vel accumsan.</p>
                    </div>
                </div>
                <div class="slide">
                    <div class="image-holder">
                        <img src="img/living_room2.jpg" alt="" />
                    </div>

in each instance of an img tag, I need to insert the filename from the DB. so, first image tag would be primary key 1, second primary key 2 and so forth. Here is the PHP script I am using to retrieve the filename, which works, but I am unsure how to send the ID of the image to the script and then return it properly.

 <?php
 $hote = 'localhost';
 $base = '*****';
 $user = '*****';
 $pass = '*****';
 $cnx = mysql_connect ($hote, $user, $pass) or die(mysql_error ());
 $ret = mysql_select_db ($base) or die (mysql_error ());
 $image_id = mysql_real_escape_string($_GET['ID']);
 $sql = "SELECT image FROM image_upload WHERE ID ='$image_id'";
 $result = mysql_query($sql);
 $image = mysql_result($result, 0);

 header('Content-Type: text/html');
 echo '<img src="' . $image . '"/>';
 exit;


 ?>

any help would be appreciated, thanks a heap

share|improve this question
    
    
Not related to the question, but try not to use die() in real/production applications. You can use trigger_error() instead, or another debugging mechanism. –  Ynhockey Mar 11 '12 at 15:38
    
OK, didnt know that, thanks –  Jjames Mar 11 '12 at 15:46
    
Not sure if I get it. Does the db field contain the part URL to the image? i.e. img/imagename.png? –  Bjørne Malmanger Mar 11 '12 at 15:47
    
Yes, and i want to insert that filename into the img tag....but each page has about 10 tags so i need to grab them from the DB using the ID primary key...or so I thought –  Jjames Mar 11 '12 at 15:52

3 Answers 3

up vote 1 down vote accepted

From what it looks your trying too hard to separate the PHP from HTML.

// File: index.php
<?php
    $hote = 'localhost';
    $base = '*****';
    $user = '*****';
    $pass = '*****';
    $cnx = mysql_connect ($hote, $user, $pass) or die(mysql_error ());
    $ret = mysql_select_db ($base) or die (mysql_error ());
    $image_id = mysql_real_escape_string($_GET['ID']);
    $sql = "SELECT image FROM image_upload WHERE ID ='$image_id'";
    $result = mysql_query($sql);
    //$image = mysql_result($result, 0);

    $image = array();

    while ($row = mysql_fetch_assoc($result)) {
        $image[] = $row["image"];
    }
?>
<html>
    <head>
    </head>
    <body>
        <div class="slide">
            <div class="image-holder">
                <img src="<?php echo $image[0];?>" alt="" /> 
            </div>
            <div class="info">
                <p>Morbi a tellus lorem, id scelerisque ligula. Maecenas vitae turpis et.</p>
            </div>
        </div>
        <div class="slide">
            <div class="image-holder">
                <img src="<?php echo $image[1];?>" alt="" />
            </div>
        <div class="info">
            <p>Sed semper, lorem ac lobortis bibendum, magna neque varius augue, vel accumsan.</p>
        </div>
    </div>
<div class="slide">
    <div class="image-holder">
        <img src="<?php echo $image[2];?>" alt="" />
    </div>
</body>
</html>


// This is the magic code to get all the rows out of the database :)
// $row[ field_name ];
while ($row = mysql_fetch_assoc($result)) {
    $image[]  $row["image"];
}



Edit:
I'm not sure if this is what your trying to accomplish, but thought I'd share anyway.

$imageID1 = $_GET['id1'];
$imageID2 = $_GET['id2'];
$imageID3 = $_GET['id3'];

$sql = "SELECT image FROM image_upload ";
$sql = "WHERE ID = $imageID1 OR ID = $imageID2 OR ID = $imageID3";

//The rest of your code can remain the same.

Or if one id relates to 3 images.

    $sql = "SELECT * FROM image_upload WHERE ID ='$image_id'";
    $result = mysql_query($sql);

    $image = array();

    $row = mysql_fetch_assoc($result);

    $image1 =  $row["image1"];
    $image2 =  $row["image2"];
    $image3 =  $row["image3"];

I've you give me more info on what your trying to do, I'd be happy to give you a better example.

share|improve this answer
    
Note: I didn't touch any of your php logic, just moved the <?php echo $image;?> down into the HTML. –  Bradley Forster Mar 11 '12 at 15:49
    
Yes, I think I was trying to hard :)ok, but how do i get a different result for each img tag... –  Jjames Mar 11 '12 at 15:56
    
@Jjames let me know if you want me to elaborate on my edit more. –  Bradley Forster Mar 11 '12 at 16:12
    
Xcellent, that is the trick...I thank you my friend! –  Jjames Mar 11 '12 at 16:14
    
Check out PHP There are a few different ways of accessing the data. Also building a class will solve a lot of head aches later, here's a primer http://stackoverflow.com/a/9651249/1246494 –  Bradley Forster Mar 11 '12 at 16:20

Make sure your HTML file is actually a php file. Put the PHP code at the top of it then put your HTML below it. You can use

<?php echo $image; ?> 

to put the variable in like this:

<div class="slide">
    <div class="image-holder">
        <img src="<?php echo $image; ?>" alt="" />
    </div>
    <div class="info">
        <p>Sed semper, lorem ac lobortis bibendum, magna neque varius augue, vel accumsan.</p>
    </div>
</div>

It's always a good idea to use htmlentities for security (avoids javascript injection):

<img src="<?php echo htmlentities($image, ENT_QUOTES, "UTF-8"); ?>" alt="" />
share|improve this answer
    
So the PHP script that queries the DB should be in the actual HTML doc? and how do i get a result for each img tag?? –  Jjames Mar 11 '12 at 15:58
    
There should not be a .html doc, as HTML docs are static and what you are trying to do is dynamic. You must put all your code in a .php file like @Bradley's answer. You are getting the image ID's from the URL using the $_GET array. If you want more images you'll need more paramaters in the URL like file.php?ID1=3242&ID2=234234&ID3=309342 then you can get each of these ID's like this $image1_id = $_GET['ID1']; $image2_id = $_GET['ID2']; etc then you do 3 different SQL queries getting the image url and echo them out in the correct places. –  Timm Mar 11 '12 at 16:14
    
Thanks to you as well –  Jjames Mar 11 '12 at 17:08

Since you are using the $_GET array, you will want to send the ID through the URL, for instance:

http://www.example.com/image.php?ID=5

That is assuming you want to continue using $_GET for this script.

share|improve this answer
    
Well, I need each img tag to get a different result from the DB, maybe i am trying to do it incorrectly...any suggestions on a better way? basically the filename is in the db but i need to populate the image tags based on the ID in the DB table. so <img src= " table ID 1", and so forth –  Jjames Mar 11 '12 at 15:49
    
If you can output all the images from the table, then you should loop through your MySQL result with while($row = mysql_fetch_array($result)) and then for each row output the entire div class="slide". If you want to select only specific images, then please be more specific about which ones you are selecting and how :) –  Ynhockey Mar 11 '12 at 15:54
    
ok, that makes a lot of sense, could you possibly tell me where to put the fetch array, in place of the div tag I want to replace i assume.. –  Jjames Mar 11 '12 at 16:02

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.