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I have this code below. I don't know why inArray() doesn't output 0. Any idea?

var client = new Array();

function removeClient(id){

  alert(id);    //prints 17
  alert(client);   //prints 17
  alert(typeof(id));  //this prints "number"
  alert(typeof(client));  //this prints "object"
  alert($.inArray(id, client));   //this prints "-1", why?

}

Regards

Javi

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3  
How do you populate the array? –  Felix Kling Mar 18 '11 at 13:35
2  
It works: jsfiddle.net/simevidas/PFU9x –  Šime Vidas Mar 18 '11 at 13:39
2  
Or here: jsfiddle.net/fkling/ub6xX –  Felix Kling Mar 18 '11 at 13:41
    
I'm populating the array using push(). If I add more elements the elements are separated with the comma in the output. I'm populating this way "client.push(data[1]);" –  ziiweb Mar 18 '11 at 13:43
1  
@user248959: Then data[1] is probably a string. –  Felix Kling Mar 18 '11 at 13:48

6 Answers 6

up vote 5 down vote accepted

You probably populated the array with the string '17' and not the number 17. That's why it returns -1.

Live demo: http://jsfiddle.net/simevidas/s4Q3K/

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+1 That is what I was about to say :) –  Felix Kling Mar 18 '11 at 13:46
    
@Felix Good riddle though :) –  Šime Vidas Mar 18 '11 at 13:47

$.inArray returns -1 when an element is not found. Can we see where you are filling client with array values? You might not be filling the array correctly.

alert(client) should not print '17' it should print the array values separated by commas.

EDIT: I figured out what may the the issue. If client contains the string '17' and not the number 17, because 17 !== '17'

Example: http://jsfiddle.net/ub6xX/1/

Working example: http://jsfiddle.net/fkling/ub6xX/

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If the array only contains one value, 17, the output it indeed only 17. –  Felix Kling Mar 18 '11 at 13:38
    
@Felix: I... knew that. I need more coffee. –  Rocket Hazmat Mar 18 '11 at 13:39

Because inArray(id, client) checks whether id is in the array client.

And since id is not in that array (at least not per your sample), it returns -1. Know your API.

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+1, what I was going to say –  Mark Schultheiss Mar 18 '11 at 13:38
    
@Tomalak "id is not that array"? You mean "id is not in that array"? –  Šime Vidas Mar 18 '11 at 13:40
1  
@Tomalak If id (which is the number 17) is not in the array client then why does client print to '17'? –  Šime Vidas Mar 18 '11 at 13:42
    
@Šime Of course. Fixed, thanks. I suppose that client is not actually an array in the OP's real code. It is in the sample, though. (If it was an array, it would print [17], and the sample would work.) –  Tomalak Mar 18 '11 at 13:42
1  
@Tomalak: It never prints the square brackets if you alert an array. –  Felix Kling Mar 18 '11 at 13:47

I don't see where you you are putting the id into the client array in your exmaple I'm guessing because you don't have it in there in array can't find it

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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.

Because JavaScript treats 0 as loosely equal to false (i.e. 0 == false, but 0 !== false), if we're checking for the presence of value within array, we need to check if it's not equal to (or greater than) -1.

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-1 means not found, so basically the id does not exist in the items of the array.

0 would mean that it had found the id at the first position of the array. Nothing in your code suggests that this should happen.

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

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alert(client); indicates that the array contains one element. –  Felix Kling Mar 18 '11 at 13:38

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