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I am having trouble in accessing an element to validate it.

For example, if I am generating a dynamic table from a database and I have a code that looks something like this:

i=0;

while($row as values){

    <input type='text' id='quantity[$i]' name='quantity[$i]' value=''>
    <input type='text' id='quantity_req[$i]' name='quantity_req[$i]' value=''>

    $i++;
}
<input type='hidden' id='i' name='i' value='$i'>

I can use $('#i').val() to get the value of i, but how can I get the values of the text fields?

$('#quantity[i]').val(); and $('#quantity[i]').val(); doesn't work, javascript seem to think of "#quantity[i]" as a string, even though I have given 'i' a value through a for loop.

I also tried $('#quantity' +i).val() but it's not working too.

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Its simple bro, to get the value of a text field, you need to extract the textfield by classname/id. eg:-$('#txt').val(); where #txt is the id of the text field. –  dreamweiver Apr 29 '13 at 14:43
2  
Actually the string is a good example of why string interpolation would not work well in JS (at least without any special syntax or format). You said "even though I have given 'i' a value through a for loop". So you expect '[i]' to be replaced with something like '[0]'. But how can JavaScript know that it should not replace the i in quantity? If JS would replace variables, the resulting string would be '#quant0ty[0]'. –  Felix Kling Apr 29 '13 at 14:44
    
From the documentation: "To use any of the meta-characters ( such as !"#$%&'()*+,./:;<=>?@[\]^`{|}~ ) as a literal part of a name, it must be escaped with with two backslashes: \\." –  Felix Kling Apr 29 '13 at 14:46
    
I somehow expected the brackets to help in classifying it as a variable. –  user2332475 Apr 29 '13 at 14:48
    
@dreamweiver That's exactly what the OP is trying ... –  zeroflagL Apr 29 '13 at 14:49

3 Answers 3

up vote 0 down vote accepted

try this

var ival=$('#i').val();
$('#quantity\\[' +ival+'\\]').val()
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1  
[ and ] are special characters in jQuery selectors that need to be escaped –  Ian Apr 29 '13 at 14:44
    
updated. thanks –  rahul maindargi Apr 29 '13 at 14:47
    
Thanks Rahul and Ian. This really helped. –  user2332475 Apr 29 '13 at 14:48
    
@user2332475: Works fine here: jsfiddle.net/2pdkW. –  Felix Kling Apr 29 '13 at 14:51
    
If this solves your question accept as answer –  rahul maindargi Apr 29 '13 at 14:53

javascript seem to think of "#quantity[i]" as a string

That's right. "#quantity[i]" is a string; Javascript doesn't look at parts of a string that happen to name variables.

You need to concatenate the value into your string, as you tries at the end.
However, you also need to concatenate in the brackets; you concatenated #quantity1, which isn't the string you're looking for.

You also need to escape the brackets, or jQuery will parse them as an attribute selector.

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1  
If that's the case then this should work ->$('#quantity[' +i+']').val() but it still doesn't. –  user2332475 Apr 29 '13 at 14:43

I think you are mixing javascript variables and PHP variables.

PHP variables are with the '$' before the name of the variable.

If you want to get the value of the inputs you have to use the PHP variable, no te letter 'i' like you are using.

You have to do like answer from rahul maindargi and it should works.

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