Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I need to increase and decrease the value of inputs when clicking the + and - buttons but it doesn't seem to work. I got the code from this post: How to increase the value of a quantity field with jQuery? When clicking on the add button, I inserted a console.log statement for debugging purposes and surprisingly, I get a value of 3 even though I clicked on a button with an id of add1. Would really appreciate it if you could point out to me the error, thanks!

HTML:

<body>
    <p>
        <img src="http://i.imgur.com/yOadS1c.png" id="minus1" width="20" height="20">
        <input id="qty1" type="text" value="1">
        <img id="add1" src="http://i.imgur.com/98cvZnj.png" width="20" height="20">
    </p>

    <p>
        <img src="http://i.imgur.com/yOadS1c.png" id="minus2" width="20" height="20">
        <input id="qty2" type="text" value="1">
        <img id="add2" src="http://i.imgur.com/98cvZnj.png" width="20" height="20">
    </p>
</body>

jQuery:

$(function () {
    var numButtons = 2;
    //console.log(typeof(numButtons));
    //console.log(numButtons);
    for (var i = 1; i <= numButtons; i++) {

        $("#add" + i).click(function () {
            console.log(i);
            var currentVal = parseInt($("#qty" + i).val());
            //console.log(currentVal);
            if (!isNaN(currentVal)) {
                $("#qty" + i).val(currentVal + 1);
            }
        });

        $("#minus" + i).click(function () {
            var currentVal = parseInt($("#qty" + i).val());
            if (!isNaN(currentVal) && currentVal > 0) {
                $("#qty" + i).val(currentVal - 1);
            }
        });
    }
});

jsfiddle - http://jsfiddle.net/hMS6Y/

share|improve this question
    
why are you iterating over numButtons? Why not just have event handlers? – Scary Wombat Oct 2 '13 at 4:06
    
Hmm, will take that into consideration. I have to generate multiple inputs with different ids, that's why I thought the for loop makes sense. Can it be fixed? – Faizal Oct 2 '13 at 4:13
    
Your variable i is in a global state and when the for loop terminates its value becomes 3 and the functions you pass to click event access the value of i when they are triggered on click event. So the value of i these functions will get will be 3. – Jay Bhatt Oct 2 '13 at 4:17
up vote 9 down vote accepted

Try this in a simple way using class,

HTML

<body>
    <p>
        <img src="http://i.imgur.com/yOadS1c.png" id="minus1" width="20" height="20" class="minus"/>
        <input id="qty1" type="text" value="1" class="qty"/>
            <img id="add1" src="http://i.imgur.com/98cvZnj.png" width="20" height="20" class="add"/>
    </p>
    <p>
        <img src="http://i.imgur.com/yOadS1c.png" id="minus2" width="20" height="20" class="minus"/>
        <input id="qty2" type="text" value="1" class="qty"/>
        <img id="add2" src="http://i.imgur.com/98cvZnj.png" width="20" height="20" class="add"/>
    </p>
</body>

SCRIPT

$(function () {
    $('.add').on('click',function(){
        var $qty=$(this).closest('p').find('.qty');
        var currentVal = parseInt($qty.val());
        if (!isNaN(currentVal)) {
            $qty.val(currentVal + 1);
        }
    });
    $('.minus').on('click',function(){
        var $qty=$(this).closest('p').find('.qty');
        var currentVal = parseInt($qty.val());
        if (!isNaN(currentVal) && currentVal > 0) {
            $qty.val(currentVal - 1);
        }
    });
});

Fiddle: http://jsfiddle.net/hMS6Y/2/

share|improve this answer
    
don't know why you were down-voted, but I definitely think a class solution is best. – Scary Wombat Oct 2 '13 at 4:26
    
Thanks! I just want to know why put a $ in front of qty in this statement var $qty=$(this).closest('p').find('.qty'); – Faizal Oct 2 '13 at 4:52
    
@MalcolmX $qty is just a element you can use it simply qty but to differentiate that it is a jquery element, I prepend a $ before qty. – Rohan Kumar Oct 3 '13 at 4:33
    
It is possible to increase by decimal value? like 0.1, 0.2? – Heihachi Mar 2 '14 at 7:00
    
You can try this Demo – Rohan Kumar Mar 2 '14 at 8:38

The issue at hand is that the value of i is 3 by the time the loop ends. What you want to do is save the value of each iteration so that when the click event fires it will still hold the correct value (the value at the time of the event being wired up). One way to do this is with what are called closures. Closures basically close around the value and save the function call with the value used to be called later. One way to accomplish this is with a function factory.

function add(value){
    console.log(value);
    var currentVal = parseInt($("#qty" + value).val());    
    if (!isNaN(currentVal)) {
        $("#qty" + value).val(currentVal + 1);
    }
};

function addClosure(value){
    return function(){
        add(value);
    };
};

At this point all you need to do is change the click event as follows:

$("#add" + i).click(addClosure(i));

JSFiddle: http://jsfiddle.net/infiniteloops/y9huk/

MDN Closures: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Guide/Closures

share|improve this answer

in for loop i value become 3

DEMO

$(function () {

    $("#add1").click(function () {
            add(1);
    });

    $("#minus1").click(function () {
        minus(1);
    });

$("#add2").click(function () {
            add(2);
    });

    $("#minus2").click(function () {
        minus(2);
    });
});

function add(i){
var currentVal = parseInt($("#qty" + i).val());

        if (!isNaN(currentVal)) {
            $("#qty" + i).val(currentVal + 1);
        }
}

function minus(i){
  var currentVal = parseInt($("#qty" + i).val());
        if (!isNaN(currentVal) && currentVal > 0) {
            $("#qty" + i).val(currentVal - 1);
        }
}
share|improve this answer

Your variable i is global in the case it will actually work for #add3, #minus3. Here in code you can try this thing-

$(function () {
    var numButtons = 2;
    //console.log(typeof(numButtons));
    //console.log(numButtons);
    for (var i = 1; i <= numButtons; i++) {
        var t = i; //Now t is local 
        $("#add" + t).click(function () {
            console.log(t);
            var currentVal = parseInt($("#qty" + t).val());
            //console.log(currentVal);
            if (!isNaN(currentVal)) {
                $("#qty" + t).val(currentVal + 1);
            }
        });

        $("#minus" + t).click(function () {
            var currentVal = parseInt($("#qty" + t).val());
            if (!isNaN(currentVal) && currentVal > 0) {
                $("#qty" + t).val(currentVal - 1);
            }
        });
    }
});

Hope this will help.

share|improve this answer
    
Ah I see, how can I make it work for #add1 and #add2 ? – Faizal Oct 2 '13 at 4:20
    
This is not going to work. Your variable "t" will still access the value of "i" and end up being 3 because of run time binding. – Jay Bhatt Oct 2 '13 at 4:26

Working code.

<body>
    <div id='placeholder'>
    <p>
        <img src="http://i.imgur.com/yOadS1c.png" act='min' id="1" width="20" height="20" />
        <input id="qty1" type="text" value="1">
        <img src="http://i.imgur.com/98cvZnj.png" act='add' id="1" width="20" height="20" />
    </p>
    <p>
        <img src="http://i.imgur.com/yOadS1c.png" act='min' id="2" width="20" height="20" />
        <input id="qty2" type="text" value="1">
        <img src="http://i.imgur.com/98cvZnj.png" act='add' id="2" width="20" height="20" />
    </p>
    </div>
</body>



$(function () {
        $('#placeholder img').each(function(){
            $(this).click(function(){

            $action = $(this).attr('act');        
            $id = $(this).attr('id');
            $val = parseInt($('#qty'+$id).val());

            if($action == 'add'){
                $val = $val + 1;
            } else {
                if($val > 0){
                    $val = $val - 1;    
                }
            }
            $('#qty'+$id).val($val);

            });

        });
    });
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.