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my html

<div id="sample-reminder">
    <div id="reminder_0000">
        <input type="text" name="val_0000" value="1">
    </div>
</div>

my code

rigaHtml = $('#sample-reminder').clone(); // i have to work on a clone of dom
rigaHtml.find('input[name^=val_]').val(99);
rigaHtml.html().replace(/0000/g, 987654321); 

last command not replace my placeholder '0000'. if i move replace() before find(), i cant' use find :-(

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4 Answers 4

up vote 2 down vote accepted

You don't need to use .clone() in this case:

var rigaHtml = $('#sample-reminder').html();
$(rigaHtml.replace(/0000/g, 987654321))
  .find('input[name^=val_]')
  .val(99)
  .appendTo('#container')

Where '#container' is the node you wish to add the modified HTML to.

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I assumed there was a reason OP said i have to work on a clone. Seems you knew more than the rest regarding OPs intentions :) +1. –  François Wahl Oct 1 '12 at 9:05
1  
@FrançoisWahl This is because OP worked iteratively; at first a clone would be required, otherwise the .val() would update the sample div (which is hidden); the .replace() came later, but by that time a new approach was needed :) –  Ja͢ck Oct 1 '12 at 9:47

Assuming you are looking to change the id property of #reminder_0000 and the name property of val_0000, try this:

$rigaHtml = $('#sample-reminder').clone();
var $input = $("input", $rigaHtml);
var $div = $input("div", $rigaHtml);

$input.val(99).attr("name", $input.attr("name").replace(/0000/g, 987654321));
$div.attr("id", $div.attr("id").replace(/0000/g, 987654321));
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yes. but i have to replace value of input. thanks :-) –  Roberto Oct 1 '12 at 8:09
1  
@Roberto see my edit –  Rory McCrossan Oct 1 '12 at 8:10

You need to set the result back.

var html = rigaHtml.html().replace(/0000/g, 987654321);
rigaHtml.html(html);
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seems not works :-( jsfiddle.net/8PBYx –  Roberto Oct 1 '12 at 8:08

You are not doing anything with the returned value of replace. That should be written as:

rigaHtml.html(rigaHtml.html().replace(/0000/g, 987654321)); 

Even then, rigaHtml is not in the DOM because it's a clone of the original elements. So you still wouldn't see a visible change unless you put it back inside the DOM.

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