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According to the example, i want in each times adding new input with putting number in fields(1, 2, 3), number increasing in each one from new input adding to name[+number increasing here+][] in the input.

Now i have this in my code:
Example:

if put to "field 1" number 2 we get tow new input that name it is name[0][], name[1][].
in "field 2" put number 3 we get name[0][], name[1][], name[2][]
in "field 3" put number 2 we get name[0][], name[1][]

I want thie:

if put to "field 1" number 2 we get tow new input that name it is name[0][], name[1][]
in "field 2" put number 3 we get name[2][], name[3][], name[4][]
in "field 3" put number 2 we get name[5][], name[6][] and etc.

Code:

$('input').live("keyup", function () {    
    var id = '#'+$(this).closest('b').attr('id');
    $(id+' .lee').empty();    
    var $val = $(this).val();
    for (var i = 0; i < $val; i++) {
        $(id+' .lee').append('<input type="text" name="hi['+i+'][]">');        
    }
});
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2 Answers 2

Since you want to update all of the inputs on change, you could loop through all inputs after appending the elements. Just add a classname to them so you know which ones to count.

Example:

$('input').live("keyup", function () {    
    var id = '#'+$(this).closest('b').attr('id'),
    val = $(this).val();

    $(id+' .lee').empty();  

    for (var i = 0; i < val; i++) {
        $(id+' .lee').append('<input type="text" class="input_generated">');  
    }

    $('input.input_generated').each(function(i) {
      $(this).attr('name', 'hi[' + i + '][]');
    });
});

Fiddle: http://jsfiddle.net/rHUqS/1/

share|improve this answer
    
If not want use from .attr('name', 'hi[' + i + '][]');, i want use as: <input type="text" name="hi['+i+'][]">, how is it? –  Jennifer Anthony Sep 23 '11 at 9:43
    
Well, you could use jQuerys .replaceWith(), but that would be an unnecessary way to go. Although if you really want to do it then use this in the each-loop: $(this).replaceWith('<input type="text" class="input_generated" name="hi[' + i + '][]" />'); Fiddle: jsfiddle.net/rHUqS/2 –  Septnuits Sep 23 '11 at 9:48
    
I mean that I not have one input, I have several input. if want use it as, it is bad. it is better that done number increasing in for-loop: for (var i = 0; i < val; i++) { $(id+' .lee').append('<input type="text" class="input_generated">'); } how is for this? –  Jennifer Anthony Sep 23 '11 at 9:57
    
I'm not sure I understand or how you mean it is bad. The original code I posted works for several inputs. Would you care to elaborate? –  Septnuits Sep 23 '11 at 13:15
    
For example, my inputs is as: $(id+' .lee').append('<input type="text" name="how['+i+'][]"><input type="text" name="hi['+i+'][]"><input type="text" name="hello['+i+'][]"><input type="text" name="are['+i+'][]"><input type="text" name="is['+i+'][]"><input type="text" name="book['+i+'][]"><input type="text" name="calander['+i+'][]"><input type="text" name="glasses['+i+'][]">'); }, it is better that done number increasing in for-loop, !? how is it? –  Jennifer Anthony Sep 23 '11 at 14:27

By using a variable outside the function, you can solve this simply. However, it would always just increment the index numbers; if you typed the counts in in the wrong order, your indexes would be in the wrong order. But maybe that's okay.

var counter = 0;
$('input').live("keyup", function () {    
    var id = '#'+$(this).closest('b').attr('id');
    $(id+' .lee').empty();    
    var val = int($(this).val());
    for (var i = counter; i < val + counter; i++) {
        $(id+' .lee').append('<input type="text" name="hi['+i+'][]">');        
    }
    counter = val + counter;
});

EDIT: fixed val coming through as a string not an int

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Your code is bad worked, see : jsfiddle.net/wAwyR/10 . please add number 2 in field 1 and number 2 in field 2. you get a lot of input no 2 input!! –  Jennifer Anthony Sep 23 '11 at 8:46
    
This not worked: jsfiddle.net/wAwyR/11 . please give me example in jsfiddle.net –  Jennifer Anthony Sep 23 '11 at 9:41

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