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've got 3 jquery sliders on one page showing shoe sizes for different groups (mens/women/children). Each group has an array of values for UK/US/Euro. When I run it though only the first instance updates the sizes for US/EURO aren't pulled back. What am I missing?

http://www.petersenuploads.co.uk/footslider.html

Thanks

share|improve this question

1 Answer 1

up vote 1 down vote accepted

The problem is there are - (minus) signs instead of equal signs used when defining the arrays:

sizesWomens[0] - new Array(3,4.5,35.5);

should be

sizesWomens[0] = new Array(3,4.5,35.5);

But I think it would be better to use a different method than what you have, especially for the children's sizes since they go back to 2... give me a min to work on a fix for that ;)


Update: Try this code (setting up the arrays could be done much cleaner) - Here's a demo!

$(document).ready(function () {
    var updateSizes = function (s) {
        return "UK size:" + s[0] + ", US size: " + s[1] + ", Euro size: " + s[2];
    },
    menSizes = Array(14),
    womenSizes = Array(10),
    childrenSizes = Array(18);

    menSizes[0] = [5, 6, 38];
    menSizes[1] = [5.5, 6.5, 38.5];
    menSizes[2] = [6, 7, 39];
    menSizes[3] = [6.5, 7.5, 40];
    menSizes[4] = [7, 8, 40.5];
    menSizes[5] = [8, 9, 42];
    menSizes[6] = [8.5, 9.5, 42.5];
    menSizes[7] = [9, 10, 43];
    menSizes[8] = [9.5, 10.5, 44];
    menSizes[9] = [10, 11, 44.5];
    menSizes[10] = [10.5, 11.5, 45];
    menSizes[11] = [11, 12, 46];
    menSizes[12] = [11.5, 12.5, 46.5];
    menSizes[13] = [12, 13, 47];

    womenSizes[0] = [3, 4.5, 35.5];
    womenSizes[1] = [3.5, 5, 36];
    womenSizes[2] = [4, 5.5, 37];
    womenSizes[3] = [5, 6.5, 38];
    womenSizes[4] = [5.5, 7, 38.5];
    womenSizes[5] = [6, 7.5, 39];
    womenSizes[6] = [6.5, 8, 39.5];
    womenSizes[7] = [7, 8.5, 40];
    womenSizes[8] = [7.5, 9, 41];
    womenSizes[9] = [8, 9.5, 42];

    childrenSizes[0] = [0, 0, 15];
    childrenSizes[1] = [0.5, 1, 16];
    childrenSizes[2] = [1.5, 2, 17.5];
    childrenSizes[3] = [2.5, 3, 19];
    childrenSizes[4] = [3.5, 4, 20];
    childrenSizes[5] = [4.5, 5, 21];
    childrenSizes[6] = [5.5, 6, 22.5];
    childrenSizes[7] = [6.5, 7, 23.5];
    childrenSizes[8] = [7.5, 8, 25];
    childrenSizes[9] = [8, 9, 27];
    childrenSizes[10] = [9, 10, 28];
    childrenSizes[11] = [10, 11, 29];
    childrenSizes[12] = [11, 12, 30];
    childrenSizes[13] = [12, 13, 31];
    childrenSizes[14] = [13.5, 1, 32.5];
    childrenSizes[15] = [2, 2, 34];
    childrenSizes[16] = [2.5, 3, 35];
    childrenSizes[17] = [3.5, 4, 36];

    $("#slider-men").slider({
        range: "max",
        min: 0,
        max: 13,
        step: 1,
        slide: function (e, ui) {
            $("#amount-men").val(updateSizes(menSizes[ui.value]));
        }
    });
    $("#amount-men").val(updateSizes(menSizes[0]));
    $("#slider-women").slider({
        range: "max",
        min: 0,
        max: 9,
        step: 1,
        slide: function (e, ui) {
            $("#amount-women").val(updateSizes(womenSizes[ui.value]));
        }
    });
    $("#amount-women").val(updateSizes(womenSizes[0]));
    $("#slider-children").slider({
        range: "max",
        min: 0,
        max: 17,
        step: 1,
        slide: function (e, ui) {
            $("#amount-children").val(updateSizes(childrenSizes[ui.value]));
        }
    });
    $("#amount-children").val(updateSizes(childrenSizes[0]));
});
share|improve this answer
    
Excellent answer! –  Jeepstone Feb 28 '11 at 9:18

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.