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I cannot figure out why I keep getting -1 for lastProductIndex when clearly the lastProductID is in the array!

var lastProductID = 6758;
var allProductIDs = [5410, 8362, 6638, 6758, 7795, 5775, 1004, 1008, 1013]
var lastProductIndex = $.inArray(lastProductID, allProductIDs);
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2  
you posted a questions about this only a few minutes ago..which included two code samples.. –  timbo Jul 1 '09 at 21:19
    
What does allProductIDs.indexOf(lastProductID) return? –  Chetan Sastry Jul 1 '09 at 21:22
    
Can you do that in IE? –  Nosredna Jul 1 '09 at 21:25
4  
yea, and that's pertaining to something totally different. Why I was getting -1 for indexOf. You suggested to use inArray. So this is a separate issue becuase I cannot figure out why when using inArray I get -1. So this is why I seprated it out and also so I can show code here as if I replied with code in a comment it looks like sh** and is unformatted! So this is not really the same issue! –  CoffeeAddict Jul 1 '09 at 21:26
    
@Nosredna: no, you can't. –  Paolo Bergantino Jul 1 '09 at 21:26

6 Answers 6

I had the same problem yesterday,,

var data=[2,4,6,8];
alert( $.inArray(4,data) ) // output 1 as expected
alert( $.inArray("4",data) ) // output -1 as expected 

Generally this occurs when you get the value to check from a input element or something that returns a string. You need to do parseInt(string,radix) to convert it to a number...

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i have the same problem and this solved it to me .. thanks iim –  Amr Badawy Jun 5 '10 at 11:15
    
Thanks mate, this helped me. It seems that 4 was a string for me. –  Somebody Jul 5 '10 at 11:12
    
var data=["2","4"]; $.inArray(String(4),data); if you have a haystack of strings (array) and a needle as int. String() –  Frankey Feb 8 at 14:31

Try this instead:

$.grep(allProductIDs, function(n) { return n == lastProductID; });

Caveat: grep returns an array.

It looks like jQuery does an === instead of == with inArray.

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I am not familiar with === or this technique. So you pass in the param on the left into the function as n . Then return n and it does some sort of lookup for lastProductID? –  CoffeeAddict Jul 3 '09 at 20:00
    
yea, an array isn't what I want returned. Nice function though. I resolved my problem, see above. –  CoffeeAddict Jul 3 '09 at 20:04
    
This worked better for me than the @iim.hlk's answer because my "lastProductID" could be an alphabetic string. –  Martijn May 24 at 13:13
    
+1, Wow.. thanks... Its really awesome... It is also working with date calculations. –  CJ Ramki Jun 14 at 8:12

Here is why everyone hates languages that are not TYPED. I had initially set the lastProductIndex value with a value, but it was a string (because I had gotten the value from an HttpResponse object from returned JSON. So consequently I had set the variable to a string because of the returned JSON value was a string. When I hard coded the number 6758 into $.inArray it worked fine so that caught my attention.

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1  
You might as well give yourself the correct answer. You've earned it. :-) stackoverflow.com/questions/209329/… –  Nosredna Jul 2 '09 at 3:16
13  
everyone? I love Javascript. It's not Javascript's fault you don't know how it behaves. –  Paolo Bergantino Jul 2 '09 at 3:32
    
Of course if it was a strongly typed language, your code wouldn't compile. –  garrow Jul 2 '09 at 3:48
    
to be honest, that's what can happen when you use a variable for more than one purpose (and on top, more than one data type) :) –  Russ Cam Sep 8 '09 at 16:16

The $.inArray() method is similar to JavaScript's native .indexOf() method in that it returns -1 when it doesn't find a match. If the first element within the array matches value, $.inArray() returns 0.

According to: http://api.jquery.com/jQuery.inArray/

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Are you using any other JavaScript libraries in your page?

There could be a conflict for the $ shorthand if you are. This can be solved in a number of ways, one of which would be wrapping the code in a self-executing anonymous function

(function($) {
    var lastProductIndex = $.inArray(lastProductID, allProductIDs);
})(jQuery);
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I am using a mix of standard JavaScript and also some jQuery. I'm using some functions of JCarousel –  CoffeeAddict Jul 2 '09 at 0:56
    
>>There could be a conflict for the $ shorthand if you are. not the issue...I had this same problem even when I was using indexOf –  CoffeeAddict Jul 2 '09 at 0:57
    
Using that self-executing anonymous function inside my existing function ended up hiding the lastProductIndex variable so I ended up with an error saying lastProductIndex variable did not exist on the lines after this that were trying to reference it –  CoffeeAddict Jul 2 '09 at 2:54
    
You would need to declare lastProductIndex outside of the function and assign it a value inside. –  Russ Cam Jul 2 '09 at 6:10

This confused me too at first, I had an identical problem. It seems jQuery.inArray() requires a string. So you could just do:

var lastProductID = "6758";

In my case I was trying to do:

var foo = date.getTime()/1000;

Which always resulted in -1 being returned from $.inArray()

But you can just cast it to a string:

var foo = String(date.getTime()/1000);

Hope that helps somebody :)

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1  
$.inArray does not require a string. The OPs code works fine - jsbin.com/uqiba . –  Russ Cam Sep 8 '09 at 16:14
    
Check the source of $.inArray - it just runs through and does === comparisons. Strings unrelated, unless you're trying to compare 4 to '4'. –  Matchu Oct 29 '09 at 0:07

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