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I am having issues understanding why my jQuery index() function is not performing the way I expect it to. Perhaps I'm not understanding this. Let me show you.

I set up a new array. We'll use this later:

var mySources = new Array(); 

I have 5 images on my page:

<div id="homeSlides">
       <img src="../images/homeImages/00.jpg" width="749" height="240" alt="myAltTag" />
       <img src="../images/homeImages/01.jpg" width="749" height="240" alt="myAltTag"  />
       <img src="../images/homeImages/02.jpg" width="749" height="240" alt="myAltTag" />
       <img src="../images/homeImages/03.jpg" width="749" height="240" alt="myAltTag" />
       <img src="../images/homeImages/04.jpg" width="749" height="240" alt="myAltTag" />

I put them all in an jQuery object, like this:

var myImages = $("#homeSlides img");

Now, for each one, I extract the src attribute and push it into the mySources array like this:

 $(myImages).each( function(index) {
        mySources[index] = $(this).attr('src');
});

Now, I will run the array to the FireBug console to make sure it worked.

This...

console.log(mySources);

...returns this...

["../images/homeImages/00.jpg", "../images/homeImages/01.jpg", "../images/homeImages/02.jpg", "../images/homeImages/03.jpg", "../images/homeImages/04.jpg"]

...which is what I expect.

Now I do this:

var myVar = $(myImages).eq(2).attr('src');

Tracing that variable now...

console.log(myVar);

...returns this...

../images/homeImages/02.jpg

But then when I do this...

console.log('Index of ' + myVar + " is: " + ($(myVar).index( mySources )) );

...it returns this:

 Index of ../images/homeImages/02.jpg is: -1

This is throwing me. Why would it return -1 for "not found" when it should be retunring 2. It does mat the second slot in the mySources array, no?

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myImages is already a jQuery object. You don't need to do $(myImages) –  Jose Rui Santos Feb 29 '12 at 17:43

2 Answers 2

up vote 3 down vote accepted

You are trying to use index() on an array. It is not intended to be used for anything other than jQuery element objects.

Using $.inArray() would be the better method

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Yup, that's it. Thank you, and thanks to the others who responded as well. Always appreciated! –  Steve C. Feb 29 '12 at 18:26

You may have the function backwards. Can you try:

$(mySources).index( myVar )
share|improve this answer
2  
+1 Or better yet, $.inArray(mySources, myVar). –  T.J. Crowder Feb 29 '12 at 17:29
    
@T.J.Crowder Actually $.inArray(myVar, mySources) is the correct way –  Jose Rui Santos Feb 29 '12 at 17:57
    
@JoseRuiSantos: Quite so. jQuery's argument order is a source of ongoing frustration to me. :-) –  T.J. Crowder Feb 29 '12 at 17:58
    
@T.J.Crowder Same happens to me sometimes :) –  Jose Rui Santos Feb 29 '12 at 18:00

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