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I created a form with a text field that has Spry Validation (ie javascript). The user can select the number of rows in the form from 1 to 10. I need the code below to also expand but I'm not familiar enough with javascript to make it work.

$divkey is the variable that controls how many rows are in the form.

Original

<script type="text/javascript">
var sprytextfield1 = new Spry.Widget.ValidationTextField("sprytextfield1", "none", {validateOn:["change"], maxChars:20});
var sprytooltip1 = new Spry.Widget.Tooltip("sprytooltip1", "#sprytrigger1");
</script>

so I need the line 'var sprytextfield1...' to repeat based on $divkey with the next line being 'var sprytextfield2...' and so on. Can someone please rewrite this so it will work?

Trying to use php

<script type="text/javascript">
<?php   for ($i = 0; $i < $divkey; $i++) { $num=$i+1; ?>  
var sprytextfield<?php echo $num;?> = new Spry.Widget.ValidationTextField("sprytextfield<?php echo $num;?>", "none", {validateOn:["change"], maxChars:20});
<?php }?>
var sprytooltip1 = new Spry.Widget.Tooltip("sprytooltip1", "#sprytrigger1");
</script>

Trying to use javascript

<script type="text/javascript">
var numwrestler = <?php echo $wrestlerkey; ?>;
var sprytextfield = [];
for (var i = 0; i < numwrestler; i++) {
    var num = i+1;  
var sprytextfield[num] = new Spry.Widget.ValidationTextField("sprytextfield"+num, "none", {validateOn:["change"], maxChars:20});
}
var sprytooltip1 = new Spry.Widget.Tooltip("sprytooltip1", "#sprytrigger1");
</script>
share|improve this question
    
In either attempt, what was the JavaScript which was emitted to the browser? –  David Jul 11 '13 at 1:27
    
It looks to me like the only error in your JavaScript is the var in line beginning var sprytextfield[num] = ..., though you probably want to use index i, not num and it would be best practice to var num; outside of the loop and just set num inside (if you feel this variable necessary). –  Paul S. Jul 11 '13 at 1:38

2 Answers 2

up vote 1 down vote accepted

I'd recommend that you use a Javascript array for this type of task. Your code is mostly correct, but the var in your for loop is incorrect, and the creation of the num variable instead of just using i is redundant.

<script type="text/javascript">
var sprytextfield = new Array();
var numwrestler = <?php echo $wrestlerkey; ?>;
for(var i = 0; i < numwrestler; i++){
    sprytextfield[i] = new Spry.Widget.ValidationTextField("sprytextfield"+(i+1), "none", {validateOn:["change"], maxChars:20});
}

var sprytooltip1 = new Spry.Widget.Tooltip("sprytooltip1", "#sprytrigger1");
</script>

Be sure that your PHP variable(s) are defined in the file before you include them in your script.

share|improve this answer
    
This still gives sprytextfield form [undefined, Object, Object, ..] –  Paul S. Jul 11 '13 at 1:41
1  
My mistake. The code has been fixed. –  maxton Jul 11 '13 at 1:45
    
very weird, anytime I make 'sprytextfield1 =' an array (ie sprytextfield[i] or sprytextfield[divnum] the javascript validation doesn't work. however this DOES work: –  Matt Keel Jul 13 '13 at 0:49
    
var sprytextfield1 = new Spry.Widget.ValidationTextField("sprytextfield"+divnum, "none", {validateOn:["change"], maxChars:20}); ------- This is in the loop this way and the first sprytextfield1 doesn't mess it up... is that ok? –  Matt Keel Jul 13 '13 at 0:51
    
PS... var divnum = i+1 –  Matt Keel Jul 13 '13 at 0:54

In your PHP code, you never define the variable divkey, by deafault the value will be 0. Try:

<script type="text/javascript">
<?php  $divkey = 10; for ($i = 0; $i < $divkey; $i++) { $num=$i+1; ?>  
var sprytextfield<?php echo $num;?> = new Spry.Widget.ValidationTextField("sprytextfield<?php echo $num;?>", "none", {validateOn:["change"], maxChars:20});
<?php }?>
var sprytooltip1 = new Spry.Widget.Tooltip("sprytooltip1", "#sprytrigger1");
</script>

Please, note that the variable that you are using as index $num in every iteration of the loop will be increasing 2, because of the i++ and the $num=$i+1

share|improve this answer
1  
nope. $num is not increasing twice. It's getting $i+1 and $i is increasing once every iteration. So if $i=1 then $num=2, if $i=2, $num=3 etc :) –  Fallen Jul 11 '13 at 1:37
    
That's true, my fault. Sorry :\ –  gryphes Jul 11 '13 at 1:41
    
$ divkey is defined further up the page. This not the complete page. –  Matt Keel Jul 12 '13 at 2:29

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