Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am working on a jquery form file that uses an array to populate a dropdown of sizes based on the selection of the material. This works fine but now we are adding an additional dropdown and we need to have different values in the array based on that selection.

this is the part of the current working code:

var Material = new Array();
Material['UNC']    = new Array('40', '32');
Material['UNF']    = new Array('10', '24');

This is basically what I am trying to, not sure how:

if($("#style").val() == "long") {  var Material = new Array();
Material['UNC']    = new Array('45', '35');
Material['UNF']    = new Array('15', '29');} else {

var Material = new Array();
Material['UNC']    = new Array('40', '32');
Material['UNF']    = new Array('10', '24');}

I'm not having any luck, I'm not super familiar with Javascript functions. Thanks

share|improve this question
    
Don't use arrays with non-numerical keys. Use objects instead. Learn more about objects: developer.mozilla.org/en-US/docs/JavaScript/Guide/…. –  Felix Kling Feb 21 '13 at 2:35
    
Also better to use array literals than the constructor. What do you expect from new Array(10);? –  RobG Feb 21 '13 at 2:36
    
Are all values for all possible lists known at the time the page loads or are you going back to your sever to fetch a list of sub dropdown values? –  Jason Sperske Feb 21 '13 at 2:36
    
Thank you for all the help, I'm still having an issue and I think it is because the value is not really being determined unless the selection is submitted. Is it possible to use something like if($("#style").val() == "long") but just having it selected on the dropdown on the same page, not yet submitted? –  Kellybird Feb 21 '13 at 13:04

2 Answers 2

One way:

var isLong = $('#style').val() === 'long';
var material = {};
material.UNC = (isLong) ? [45, 35] : [40, 32];
material.UNF = (isLong) ? [15, 29] : [10, 24];

Another way:

var isLong = $('#style').val() === 'long';
var material = {};
if (isLong) {
  material.UNC = [45, 35];
  material.UNF = [15, 29];
}
else {
  material.UNC = [40, 32];
  material.UNF = [10, 24];
}

As Felix Kling points out, it is better to use an object over an array for material. I've also used JavaScript convention of a lowercase variable name. Instead of using new Array use [] and instead of new Object, you can use {}.

share|improve this answer

You just need to move the declaration of the Material variable outside the blocks:

var Material = new Array();
if($("#style").val() == "long") {
    Material['UNC']    = new Array('45', '35');
    Material['UNF']    = new Array('15', '29');
} else {
    Material['UNC']    = new Array('40', '32');
    Material['UNF']    = new Array('10', '24');
}

However, as others have pointed out, you should be using an object rather than an array for these kinds of non-numeric indexes. You should also use object and array notation:

var Material = {};
if($("#style").val() == "long") {
    Material['UNC']    = ['45', '35'];
    Material['UNF']    = ['15', '29'];
} else {
    Material['UNC']    = ['40', '32'];
    Material['UNF']    = ['10', '24'];
}
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.