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I encounter an undefined on associative array values, and cant figure out why!

var list = new Array();

function addNewElement(id, n) {
    var obj = new Object();
    obj["id"] = id;
    obj["n"] = n;
    list.push(obj);
}

function exists(id) {
    for (var o in list) {
        if (o["id"] == id) {
            return true;
        }
    }
    return false;
}

id is string, n is an integer.

In exists o["id"] returns Undefined, for every object in it, but direct after object creation the values are present and accessible via obj["id"].

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3 Answers 3

up vote 6 down vote accepted

That's not how JS for loops work. Your o variable becomes the index, not the value. It should be:

if (list[o]["id"] == id) {

Except really you shouldn't use a for..in on an array, so it should be:

function exists(id) {
    for (var i = 0; i < list.length; i++) {
        if (list[i]["id"] == id) {
            return true;
        }
    }
    return false;
}
share|improve this answer
    
Hm, could you link me to an explanation why JS does not use arrays like almost every other language? (Array[index] is afaik the normal way of accessing arrays?) –  Markus May 27 '13 at 13:16
    
Yes, arrayName[index] is what JS does. Where you said Array[index] in your comment, Array would be your list variable and o would be the index, hence list[o] as shown in my answer gets you the object at that array location and list[o]["id"] (or list[o].id) gets you a property of the object at that array location. For reference: MDN's for..in page. –  nnnnnn May 27 '13 at 13:18
    
Aw i see, but it is never the less quite non-intuitive behaviour if you come from e.g Java where for(Object o : list) uses an Iterator and returns you the actual object in o, allowing direct access. So javascript for..in is somewhat similar to the iterators in C++ STL. –  Markus May 27 '13 at 13:24
    
Yes. There is an array .forEach() method that behaves the way you are expecting where you'd get the actual object in o, but it'd be clunkier to use for your purpose where you want to return out of the containing function as soon as you find a matching value. Also the JS for..in is handy if you need both the key name and the associated value - it's not intended for arrays. –  nnnnnn May 27 '13 at 13:26

Below is also awesome code snippet : Demo Here

 var list = {};
    setValue("etshte", 393);
    var result = containsKey("etshte");
    alert(result);

    function setValue(key, value) {
        list[key] = value;
    }

    function containsKey(key) {
        if (list[key] == undefined)
            return false;
        else
            return true;
    }

Demo Here

share|improve this answer
    
That's not an appropriate use of an array, though it works because arrays are a type of object. In your code list should be a plain object, as in var list = {};. (Note that when I say "it works", it doesn't actually do what the OP was trying as far as creating a list of objects with id and n properties. Also list[key] == undefined is kind of imprecise: what if a property with the specified key has been created but its value is undefined or null? That's not the same as the key not existing at all.) –  nnnnnn May 27 '13 at 13:31
    
i used array only because it was used in question –  Mota Chuha May 27 '13 at 13:44
    
update has been made –  Mota Chuha May 27 '13 at 13:44

For in loops not only cycle through added members, but also those stored in the prototype

To fix this use:

if (o.hasOwnProperty("id") && o["id"] == id) { /* */ }
share|improve this answer
    
Okay didnt know that - makes me wonder why i should use for..in anyway? in that case i just stick to good old for loops instead! –  Markus May 27 '13 at 13:17
    
The fact that for-in includes inherited properties really has nothing to do with what's causing the issue. Using o.hasOwnProperty() won't fix anything because o is a string. –  squint May 27 '13 at 13:19
    
Yes right but good to know anyway - he issue remains thats right.the object exists but the contents of o["id"] are undefined, as if i never created the key-value! –  Markus May 27 '13 at 13:20
    
On the first iteration of the loop o will be the string "0", the index of the first array element. It will not be the object stored at that index. On the second iteration o will be "1", the second index. –  nnnnnn May 27 '13 at 13:23

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