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I am trying to display the results of various javascript null checking techniques. codepen

However when my variable is actually null It breaks and I get no html output. I get an error in the console "y is undefined". I know it is undefined but I am trying to get it to go through the loop to give you each of the tests results. I can't seem to figure out what could be wrong. Any help would be great.

//var y = "im y";

var test1 = function () {
if (typeof (y) === 'undefined') {
    return "test 1 y is undefined";
} else {
    return "test 1 y is defined";
}
};

var test2 = function () {
if (!y) {
    return "test 2 y is undefined";
} else {
    return "test 2 y is defined";
}
};

var test3 = function () {
if (y === null) {
    return "test 3 y is undefined";
} else {
    return "test 3 y is defined";
}
};

var test4 = function () {
if (y == null) {
    return "test 4 y is undefined";
} else {
    return "test 4 y is defined";
}
};

var test5 = function () {
if (typeof (y) === undefined) {
    return "test 5 y is undefined";
} else {
    return "test 5 y is defined";
}
};

var a = [test1, test2, test3, test4, test5];
var b = [test1(), test2(), test3(), test4(), test5()];
var somehtml = [];

$.each(a, function (index) {
somehtml.push('<pre>' + a[index] + '</pre>');
var x = b[index];
somehtml.push('<p>' + x + '</p>');
});
$("div#stuff").html(somehtml.join(""));
share|improve this question
2  
null and undefined are different things in JavaScript. Also, your code needs to go in your question, not on some 3rd party website. –  meagar Nov 22 '13 at 4:48
    
you should try to put the significant code snippet inside the question –  mithunsatheesh Nov 22 '13 at 4:50
    
you can try opening up the web console and see the js error. –  Fikri Marhan Nov 22 '13 at 4:54
    
That is the problem, say for example I comment out the var y = im y my console then gives me an error that y is undefined and no html is output. What I want is for my function to just return that it is undefined. –  hottea Nov 22 '13 at 4:59
    
@meagar Sorry I edited my post. People on here usually ask for a fiddle or something similar. –  hottea Nov 22 '13 at 5:09

3 Answers 3

simple check like below

if (y) {
alert("defined");
return "test 1 y is defined";    

} else {
alert("not defined");
 return "test 1 y is undefined";   
}
share|improve this answer
    
The purpose of me making this is to show what the different functions return. I've edited my example. Now I need it to return undefined. –  hottea Nov 22 '13 at 5:07

First of all, undefined != null. Second, undefined != 'undefined'.

Your code examples run as expected. I suggest you read about javascript type coercion and truthy/falsy values. Then start using "use strict"; at the top of your javascript files to avoid confusion.

share|improve this answer

Sorry f I am not getting it properly.I understood your issue from the comments only. .You are getting the error in console because you are running the other tests like

if (!y) {

and

if (y === null) {

even when y is undefined, which will trigger error in your console.

Your logic should be like, if the variable is found undefined then dont do the other tests and else do them.

the test

if (typeof (y) === 'undefined') {

will be true only if the variable is undefined and null values will pass through

updated according to below comments

pls see this fiddle. This has the idea I conveyed. Also one more suggestion would be you can think of chaining the functions instead of triggering them in a loop.

share|improve this answer
    
For example, when I open the console and run test1(). I get "test1 y is undefined". which is good that is what is expected. The problem is trying to display this in the html. –  hottea Nov 22 '13 at 5:46
    
@hottea: see the update in my answer. –  mithunsatheesh Nov 22 '13 at 6:35

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