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I am trying to execute this code in javascript:

 $('#content').replaceWith("<div>" + <?php echo $tableau_Text?> + "</div>");

But is not working for me. It shows nothing to me. When I change the PHP code for something static like:

 $('#content').replaceWith("<div>Hello World</div>");

it works perfectly with that.

My html #content definition is:--

<div id="content">
    <?php echo $show_menu;?>
</div>

Any idea? Thank you very much!

UPDATE:

The var $tableau_text looks like this:

$tableau_Text = "<ul class='object_list' id='object_list' data-role='listview' data-inset='true' data-theme='c'>$TableauText</ul>";

Where $TableauText are the list items in the same format.

$TableauText = <li class='menuA' id='menuA' data-role='list-divider' data-icon='false'>River Flow</li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Rossiniere</a></li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Montsalvens</a></li>
<li class='menuA' id='menuA' data-role='list-divider' data-icon='false'>Lake Level</li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Rossiniere</a></li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Montsalvens</a></li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Lessoc</a></li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Rossens</a></li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Maigrauge</a></li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Schiffenen</a></li>
<li class='menuB' id='menuB' data-icon='arrow-r'><a href='#' target='foo'>Maigrauge</a></li>

Solution: I had several list elements with the same id which I didn't realized after I paste it here and that was making my code crazy...

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2  
This heavily depens on how $tableau_Text looks like. –  Christoph Jul 23 '12 at 12:32

4 Answers 4

up vote 7 down vote accepted

Try this:

$('#content').replaceWith("<div>" + <?php echo json_encode($tableau_Text); ?> + "</div>");

Given:

$TableauText = 'hello world ""';

$tableau_Text = "
        <ul class='object_list' id='object_list' data-role='listview' data-inset='true' data-theme='c'>
        $TableauText
        </ul>";

The browser will see:

$('#content').replaceWith("<div>" + "\n        <ul class='object_list' id='object_list' data-role='listview' data-inset='true' data-theme='c'>\n        hello world \"\"\n        <\/ul>" + "</div>")​

Which renders as

hello world ""
share|improve this answer
    
@Lucia: Imagine this problem as a set of layers. Every layer treats it's unterlying layer as simple string and does not care about syntax. So your top layer is PHP, then JavaScript and finally HTML. In every layer you have to pay attention to quote/escape the results correctly to generate valid code/markup in the underlying layer. So in your case you don't need to concatenate the PHP output <?php echo $tableau_Text?> with the static JavaScript strings "<div>". –  Dio F Jul 23 '12 at 12:39
    
Sorry guys, all my previous stuff was based on the variable called _text. I didn't think someone would store html in a variable called text. –  Esailija Jul 23 '12 at 12:40
    
Is not working!It looks like it doesn't compile, because everything stops working! Any other suggest`? –  Lucia Jul 23 '12 at 12:45
    
@Lucia what is the error message you see? Is your php version >= 5.2 ? –  Esailija Jul 23 '12 at 12:46
1  
@Lucia you have elements with same id. Every ID must be unique. Here's what I get with your html: jsfiddle.net/DQqMN/2 –  Esailija Jul 23 '12 at 13:00

Don't treat php code as variable

Try this

$('#content').replaceWith("<div><?php echo $tableau_Text?></div>");
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1  
This will not work because $tablau_text has newlines –  Esailija Jul 23 '12 at 12:51
    
@Esailija where i can't see any newlines in the question –  Ankit Jul 23 '12 at 12:57
    
Since comments are not multi-line I cannot show it in a comment :-). But every li element is separated by a newline in the OP for example. –  Esailija Jul 23 '12 at 13:04

Unless your <?php echo $tableau_Text?> outputs the relevant text surrounded in quotes, you'll end up with invalid string concatenation and therefore a JavaScript syntax error. However, since the PHP is executed before the JavaScript gets to the browser, you don't need to use string concatenation at all.

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this would be his point $('#content').replaceWith("<div><?php echo $tableau_Text?></div>"); –  Rupesh Patel Jul 23 '12 at 13:10

One counter question : is your code

$('#content').replaceWith("<div>" + <?php echo $tableau_Text?> + "</div>");

in .js file?

if so this want work. and you shoul do this before including js

var tableau_Text  = ' <?php echo $tableau_Text?>';
<script src = 'any_js.js'></script>

and in .js

$('#content').replaceWith("<div>" + tableau_Text + "</div>");
share|improve this answer
    
No is in Main.php file! xD –  Lucia Jul 23 '12 at 13:02
    
ok fine :) I just wanted to make sure –  Rupesh Patel Jul 23 '12 at 13:05
1  
than I am going with Anthony Grist's answer. :) –  Rupesh Patel Jul 23 '12 at 13:08
    
try this $('#content').replaceWith("<div><?php echo $tableau_Text?></div>"); –  Rupesh Patel Jul 23 '12 at 13:10

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