Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm trying replace the index of form elements. I have the following

    var test = "<input name='[1].Id' value='598' type='hidden' /><input name='[1].OrderItemId' value='867' type='hidden' />";
    alert(test.replace('[1]', '[2]'));

I'm getting curious results. The first hidden field is replaced by the second is ignored

ie my response is something like this:

"<input name='[1].Id' value='598' type='hidden' /><input name='[2].OrderItemId' value='867' type='hidden' />"

EDIT:

OK, thanks these methods worked on my simple example. However in reality my string is a bit more complex. Here is the contents of "var lastRow "

<td>

                 <a class="deleteAddress" href="#">
                 <img alt="remove" src="/images/icons/delete_button.gif">
                 </a></td>
                <td class="p-5" width="100">
                   <input name="[1].Id" value="612" type="hidden">
                   <input name="[1].OrderItemId" value="868" type="hidden">
                   <input class="itemAddressQuantity" name="[1].Quantity" value="" type="text">

                </td>
               <td class="p-5" width="100">
               <select name="[1].AddressId"><option value="2">address1</option></select>                            
                </td>

and here is the js function

    $('#addNewAddress').click(function (event) {

        event.preventDefault();
        var length = $('.table-item-address tbody').find('tr').length;
       var previousLength = length - 1;
        var previousIndex = "/\[" + previousLength + "\]/g";
        var currentIndex = "[" + length + "]";
        var lastRow = $('.table-item-address tbody tr').last();
alert(lastRow.html()); // html is shown above
        var newRow = lastRow.html().replace(previousIndex, currentIndex);
        $('.table-item-address tr').last().after('<tr>' + newRow + '</tr>');
        AdjustValues();
    });
share|improve this question

3 Answers 3

up vote 5 down vote accepted

In JavaScript, passing a string as the first parameter to replace() will only replace the first occurrence. You need to use a regex, with the global flag:

test.replace(/\[1\]/g, '[2]');

The extra backslashes (\) escape the brackets ([ and ]).


Edit: responding to the OP's edit, if you want to dynamically build a regex, you can't use a regex literal - that's the thing delimited by forward slashes (/), not quotes (") as in your edit. You're passing a string into replace(), I'm passing in a regex literal. Use the JavaScript RegExp() constructor to fix yours:

// The first argument is the regex, the second is a string of flags.
var previousIndex = new RegExp("\\[" + previousLength + "\\]", "g");

// Then, it's exactly the same as before.
// The second argument to replace is still a string.
var newRow = lastRow.html().replace(previousIndex, currentIndex);

Note the difference in character escaping.

share|improve this answer
    
thanks, this work on my example. So yes your rightly deserve the correct answer. tho hope you could have a quick look at the edit. –  frosty Aug 9 '10 at 21:37
    
Have a look at my edits. There's a cleaner way to do it - working on that now. –  Matt Ball Aug 9 '10 at 22:18
    
Disregard my previous comment. I forgot that JavaScript doesn't support lookbehind (and faking it is a major headache)! –  Matt Ball Aug 9 '10 at 22:30
    
aha! spot on. thanks for comments all working. very happy. –  frosty Aug 9 '10 at 22:34

See here: http://www.w3schools.com/jsref/jsref_replace.asp
Check the 3rd sample where they talk about global replace

share|improve this answer

change the replace to this replace(/[1]/g, '[2]'); This does a global replace. However I'm not sure [] and . are legal characters for ids/names.

share|improve this answer

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.