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I have a javascript function that will remove an option from a select tag when it was chosen.

the problem now is that i have 2 select tags that uses 2 of those function, now sometimes the select tags may contain the same data, thus when it is chosen on the first tag it will also be removed from the second tag.

the code is:

function connect()
{
    $("option").show();
    $(".selectbox").each(function(i) { 
        var obj = $("option[value='" + $(this).val() + "']");
        if($(this).val() != "") obj.hide();     
    }); 
}
function to()
{
    $("option").show();
    $(".selectboxes").each(function(j) { 
        var objs = $("option[value='" + $(this).val() + "']");      
        if($(this).val() != "") objs.hide();        
    }); 
}

SELECT PART:

for($z=0;$z<$rows_updatedrow;$z++)
{
?>
<select id = "sc" name = "connect_array[]" class="input-select selectbox" onchange = "connect()">
<option value = "">--Select--</option>
<?php
for($zz=0;$zz<$rows_getconnect;$zz++)
{
    $data_getconnect = mysql_fetch_assoc($query_getconnect);
    $field_name_getconnect[] = $data_getconnect['field_name'];
    $field_display_getconnect[] = $data_getconnect['field_display'];
    $field_type_getconnect[] = $data_getconnect['field_type'];
    if((($field_name_getconnect[$zz] == "friends_name" && $connect == 2) || $field_type_getconnect[$zz] == "email") && $z == 0){
    $selected = "selected=selected";
    }else{
    $selected = "";
    }
?>
<option value = "<?php echo $field_name_getconnect[$zz]; ?>" <?php echo $selected; ?>><?php echo $field_display_getconnect[$zz]; ?></option>
<?php
}
?>
</select>
 connect to 
<br/>
<?php
}
?>
</div>
<div class = "right">
<?php
for($a=0;$a<$rows_updatedrow;$a++)
{
?> 
<select name = "to_array[]" class="input-select selectboxes" onchange = "to()">
<option class = "option" value = "">--Select--</option>
<?php
for($aa=0;$aa<$rows_getto;$aa++)
{
    $data_getto = mysql_fetch_assoc($query_getto);
    $field_name_getto[] = $data_getto['field_name'];
    $field_display_getto[] = $data_getto['field_display'];
    $field_type_getto[] = $data_getto['field_type'];
    if((($field_name_getto[$aa] == "friends_name" && $to == 2) || $field_type_getto[$aa] == "email") && $a == 0){
    $selected = "selected=selected";
    }else{
    $selected = "";
    }
?>
<option class = "option" value = "<?php echo $field_name_getto[$aa]; ?>" <?php echo $selected; ?>><?php echo $field_display_getto[$aa]; ?></option>
<?php
}

tried using different classes for the two select tags but still not helping.

the options of the select tags are created dynamically thus there are times when both of them contain similar data. this cannot be avoided.

Is there anyway for me to go around this problem?

Thank you!

share|improve this question
    
pass the element's ID or the element itself to the functions. –  jbabey Sep 21 '12 at 19:11
    
You have not given enough data to answer the question. I get that you are selecting elements by classname and attribute. Is your question what is the best additional mechanism you can use to avoid selecting elements that accidentally have the same class/attribute? –  Ed Bayiates Sep 21 '12 at 19:40
    
@AresAvatar yes that's it. will post additional information about the code now. –  magicianIam Sep 21 '12 at 20:24

1 Answer 1

up vote 2 down vote accepted

When this function is called onChange, this is the select which has changed. You can then use find to get elements within that select.

function connect()
{
    var $this = $(this);

    $this.find("option").show();

    if($this.val() != ""){ 
        $this.find("option[value='" + $this.val() + "']").hide();
    }    
}
share|improve this answer
    
what does $(this) suppose to hold? when i tried to alert it, it showed [Object object]. or do i need to pass a variable to that function? thank you –  magicianIam Sep 21 '12 at 20:45
    
this is the select element, calling $(this) wraps this in a jquery object so that you can use jquery functions on it. This is how it was being used in your original code as well. –  James Montagne Sep 21 '12 at 21:09
    
would you mind explaining it a bit more. or expanding your answer. i a m not that good with jquery and js. thank you :) –  magicianIam Sep 24 '12 at 16:40
    
Maybe this will help. remysharp.com/2007/04/12/jquerys-this-demystified –  James Montagne Sep 24 '12 at 18:35
    
got it to work now thanks for this. it lead me to the right path. :) –  magicianIam Sep 24 '12 at 20:56

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