6

I want filter with jquery the options by values, If I have:

<select class="generic-widget" id="phone_line" name="phone_line">
<option value=""></option>
<option value="2">71158189</option>
<option value="4">71158222</option>
<option value="3">99199152</option>
<option value="1">98199153</option>
</select>

For this case I must show the options with value="3" and value="4" only.

Using:

$('#phone_line option[value!="3"]').remove();

I only can filter by one value, but I need something to use with x values

How can I do that? Thanks.

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  • Kindly, explain your question briefly. I din't get you what are you trying to do.... – Neeraj Singh May 22 '13 at 13:08
  • The answer of Karl-André Gagnon is the good one: short and efficient! You can test it with jsfiddle: jsfiddle.net – Manuel LANG May 22 '13 at 13:12
3

You need a function like this:

function removeOptions(id,array){
    str='[value!=""]';
    for(i=0;i<array.length;i++){
        str += '[value!='+array[i]+']';
    }
    $('#'+id+' option'+ str ).remove();
}

If you have a array with the options that you don't want remove, like this:

var myopts = [3,4];

you only run:

removeOptions('phone_line', myopts);

Cheers!

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5

If you're going to be re-using this over and over again, creating a function is a good idea. The below takes an array parameter of values you would like to remove:

function removeOptions(array) {
    for (var i = 0; i < array.length; i++) {
        $('#phone_line option[value="' + array[i] + '"]').remove();
    }
}

A quick demo: http://jsfiddle.net/tymeJV/Ca2hb/1/

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3

Well first, i don't know where is #line but it is not in the HTML you provided us.

Second I would use :

$('#phone_line option[value!=3][value!=5]').remove();

It is possible to have 2 condition in one selector!

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1

try

$("select[id*='line']").find('option[value!=3], option[value!=5]').remove();

or

$("select[id*='line']").children('option[value!=3], option[value!=5]').remove();

Thanks,

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  • it select the element by checking the string "line" .similar to contains – SivaRajini May 22 '13 at 13:08
1
$('#phone_line option').filter(function(){
    return (this.value != 3 && this.value != 4);
}).remove();

FIDDLE

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1

If you want to show only the options with values 3 and 4. It can be simply done via.

$('#phone_line option').not('option[value="3"],option[value="4"]').remove();

Here is a demo.

or You can use filter for avoiding the option values with 4 and 3

$('#phone_line option').filter('option[value="3"],option[value="4"] ').remove();

Here is a demo.

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0

try this

$('#line option[value!=3],option[value!=4]').remove();
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0
$('#line').find('option[value!=3], option[value!=5]').remove();

If options are direct descendants use .children() instead of .find()

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