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 need not show a div when in a php if structure. I'm doing:

 <?php
 $a = $_POST['somefiledcomingFromform'] ; //equals 1
if (isset($_POST['submit'])) {

    if($a==1){


      //  echo"<script>$(document).ready(function() { $('.delete').css(\"display\", \"none\")});</script>";
       echo"<script>$('.delete').css(\"display\", \"none\");</script>";

    }
}

    echo"<div class='delete'>Delete me</div>";
    ?>

But it's not working, the div shows it does not matter what line I use inside de if .. what am I doing wrong?

Thanks a million

share|improve this question
add comment

8 Answers

up vote 2 down vote accepted

Instead of putting in JavaScript, why don't you do something like this:

<?php

$a = 1;
if ($a == 1) {
    echo '<div class="delete" style="display:none;">Delete me</div>';

} else {
    echo '<div class="delete">Delete me</div>';
}
share|improve this answer
    
I'm very sorry, I posted the wrong code. I've edited the post and there's the good one. As you can see, the php is processing a form. Sorry again. –  user974417 Oct 5 '11 at 14:44
    
All you'll need to change in the above answer is the assignment of $a and the if condition. Simple enough. –  nachito Oct 5 '11 at 14:48
add comment

Try this

   <?php
    $a=1;
    if($a==1){
        echo"<div class='delete' style="display:none;">Delete me</div>";
    }
    else{
        echo"<div class='delete'>Delete me</div>";

    }
    ?>
share|improve this answer
    
Escape the quotes around style –  nachito Oct 5 '11 at 14:36
    
I'm very sorry, I posted the wrong code. I've edited the post and there's the good one. As you can see, the php is processing a form. Sorry again. –  user974417 Oct 5 '11 at 14:44
add comment

You can do:

<?php $a=1; if($a==1) : ?>

<script>
  $(document).ready(function() { 
    $('.delete').css("display", "none")
});
</script>
<?php endif; ?>

<div class='delete'>Delete me</div>

But I think it is better to do the folowing:

<?php $a = 1; ?>

<script>
  $(document).ready(function() { 
    $('.delete').css("display", "none")
});
</script>

<div class="<?php echo $a == 1 ? 'delete':'' ?>">Delete me</div>
share|improve this answer
add comment

Probably becuase your script runs before the div is loaded. Try this:

<?php
$a=1;
if($a==1){   

  //  echo"<script>$(document).ready(function() { $('.delete').css(\"display\", \"none\")});</script>";
   echo"<script>$(function(){$('.delete').css(\"display\", \"none\");});</script>";

}

echo"<div class='delete'>Delete me</div>";
?>
share|improve this answer
add comment

I think hide is the best. Leave css to your css files?

echo"<script>$('.delete').hide();</script>";

edit: and your javascript too!

share|improve this answer
add comment

Why are you using jQuery to try and accomplish that? Just use CSS.

Or, at the very least, use jQuery's "live" to address the HIDE/SHOW of the DIV. The execution order matters, and I don't think the PHP generated script will actually affect the dive you're building and showing after the PHP conditional.

share|improve this answer
add comment

Your jQuery call is beign done before the element that will receive the click function is printed on the page.

You can use your own commented line instead the straight call.

echo"<script>$(document).ready(function() { $('.delete').css(\"display\", \"none\")});</script>";

If you want to use your uncommented call, you need to print it after your div tag.

<?php
echo"<div class='delete'>Delete me</div>";

$a=1;
if($a==1){   
echo"<script>$(function(){$('.delete').css(\"display\", \"none\");});</script>";
}
?>
share|improve this answer
add comment

For starters, you don't actually use jQuery to change PHP. jQuery is client-side, PHP is server-side, and never the twain shall meet. What actually happens is that you use PHP to create your HTML document, and the browser will create a DOM that jQuery will manipulate.

As for what's wrong with your script, the reason your code does not work is because the statements are echoed in order.

The following does not work:

<script>
    $('.delete').css("display","none");  // div.delete doesn't exist yet
</script>
<div class="delete">Delete me</div>      <!-- Output *after* the jQuery call. -->

The following does work:

<script>
    $( function(){                       //wait until document.ready
        $( '.delete' ).hide();           //hide .delete after ready
    } );
</script>
<div class="delete">Delete me</div>      <!-- Output after <script> but will be hidden after document.ready -->

In addition to this problem, there are several "code smells" that would concern me about your code. Note that none of these are technically wrong, but they tend to indicate other issues.:

  1. You're using jQuery to modify the DOM in a very "plain ol' Javascript" way.
    Instead of changing CSS, use jQuery's .hide() call.
  2. You're alternating between single and double-quotes in your PHP echoes
    You use $( '.delete' ).css( "display", "none"); ... why?
  3. You're not specifying the type of script you're using
    Granted, JavaScript is the most common - but it's still better to explicitly specify the script language.
  4. You're using implied semi-colons
    This can cause unexpected behavior in certain situations and should be avoided.
share|improve this answer
add comment

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.