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<select id="select1">
    <option value="11">11</option>
    <option value="12">12</option>

<select id="select2">
    <option value="21">21</option>
    <option value="22">22</option>

Behavior of the find() and the children() methods:


$('#select1, #select2').find('option:not(:first)').remove();​​​​​​

Works as expected: select1 has only option 11 and select2 has only option 21


$('#select1, #select2').children('option:not(:first)').remove();

Works weirdly: select1 has only option 11 but select2 has no option anymore...



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2 Answers 2

up vote 2 down vote accepted

From what I see

$('#select1, #select2').find('option:not(:first)')

is equal to

$('#select1  option:not(:first), #select2  option:not(:first)')


$('#select1, #select2').children('option:not(:first)')

Think about the context selector as it's the same as using .find()

$('option:not(:first)',$('#select1, #select2'))

By using children with first.. you are only getting the first children option returned in collection.. whereas the context/find selector looks for the first in each context

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I can't explain why the .find is working with :first, but the .children isn't working with :first because :first gets the first selected element in the set of selected elements, not the ones that are the first child. What you want is :first-child.

// children
$('#select1, #select2').children('option:not(:first-child)').remove();

// find
$('#select3, #select4').find('option:not(:first-child)').remove();​


This may be a bug, though it needs more research.

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Very nice solution! You could also use each(), however, your answer is much easier. –  Dom Dec 3 '12 at 15:39

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