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.

Can anyone please help me figure this out. I am trying to make it so that an image is displayed when the value in mysql table = 1. i've got that bit covered and the image is displayed. Is there a way to include an if or else statement to say if the value in the mysql table is 0 then display different image?

Thanks.

<?php
        $get_social_set = get_social();

        while ($social = mysql_fetch_array($get_social_set)) 

        {


    ?>


<table width="100%" border="0">
  <tr>
    <td width="10">&nbsp;</td>
    <td width="30"><?php echo"
            <img width=30px heigh=24px src=\"assets/img/icons/tick.png\"/>"; } ?></td>
share|improve this question

closed as too localized by nickb, deceze, Jocelyn, Pondlife, dystroy Oct 15 '12 at 17:00

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
That's really php basics, you maybe should learn a little php before asking questions about it. –  blue112 Oct 15 '12 at 15:17

3 Answers 3

if ($social['name_of_field_youre_checking'] == 0) { ... }
share|improve this answer
    
thank you so much have been trying to figure it out for ages. –  John Taylor Oct 15 '12 at 15:17
    
what do i put in the brackets { ... } is that where the image directory goes? because how i'm typing it it won't work. –  John Taylor Oct 15 '12 at 15:24
    
that's up to you. I don't know what you intend to do. –  Marc B Oct 15 '12 at 15:26

Something like this should work in a php file:

<?php

$image = false;
// get results from database
// process results
if ( $results === 1) {
    $image = 'tick.png';
} else {
    $image = 'something.png';
}
?>
<img src="<?php echo $image ?>" />

Bye

share|improve this answer
    
thanks this code seems to work but now where the image is just set to 'tick.png' it can not find the image directory. but when i try pointing it to the full directory this doesnt work and i get a syntax error. :/ –  John Taylor Oct 15 '12 at 15:33

Name image files as foreg : tick0.png , tick1.png and use the code below 'SHOW' being your db fieldname :

 <?php echo"<img width=30px heigh=24px src=\"assets/img/icons/tick".$social['SHOW'].".png\"/>"; } ?>
share|improve this answer

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