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I have 3 variables, that are not always set. o1, o2, o3.

I want to create a new variable as follows:

if none are set: o4 = null

if o1 is set, o4 = o1, regarded of what the other are.

when o1 is not set and o2 is set: o4 = o2

So o4 = o3 only gets set when 1 and 2 are not set.

==

I am now using a long switch, but I bet it can be done better.

JavaScript / jQuery

    var tmpl = '';

    if(data.o3 != null)
        tmpl = data.o3;

    if(data.o2 != null)
        tmpl = data.o2;

    if(data.o1 != null)
        tmpl = data.o1;
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whathaveyoutried.com –  Elliot Bonneville Mar 17 '12 at 22:59

4 Answers 4

up vote 2 down vote accepted

Try var o4 = o1 || o2 || o3.

Edit: As per comments, this only works when values that might be set are not falsy. May be best to avoid this method, unless you're sure.

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2  
This doesn't work if` o1, o2` or o3 can be legitimate falsey values like "", false, 0, NaN, null etc... –  jfriend00 Mar 17 '12 at 23:02
1  
This works assuming the variables cannot be falsy values like 0. And also if o3 is not set at all then o4 will end up as undefined instead of null. –  Henry Mar 17 '12 at 23:02
    
was my first thought as well but it won't work for 0 for example and OP said the condition is is set not is truthy | edit: wow i'm slow :) –  Andy Mar 17 '12 at 23:03
    
Didn't see that. Good point! –  Adam Mar 17 '12 at 23:06
    
This does not really work for me, or I have another error in the code. Now in my code o1 and o2 are set, this method chooses o2, or did I do something wring. –  Saif Bechan Mar 17 '12 at 23:06

This should do it:

o4 = o1 || o2 || o3 || null;

It will check each variable in order to see if it is falsy. If a value is truthy for any of the variables that value will be used. If none are truthy o4 will be set to null. null at the end is optional if you don't care what falsy value o4 has.

Edit: switched "set" to "truthy".

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+1 Good answer, this works will for me. –  Saif Bechan Mar 17 '12 at 23:15

The easiest way (and a method that supports an arbitrary number of variables) would be to put your o1, o2, o3 variables into an array:

getFirstDefined(array) {
    for var (i = 0; i < array.length; i++) {
        if (typeof array[i] != "undefined") {
            return(array[i]);
        }
    }
    return(null);
}
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This seems to be the only correct solution so far –  Andy Mar 17 '12 at 23:10
    
+1 Good solution here. In my case the variables are set or not, so the solution of Adam will do fine. –  Saif Bechan Mar 17 '12 at 23:17

demo

function set(o1, o2, o3) {
    var o4 = o1 || o2 || o3 || null;
    console.log(o4);   //check o4
}

set()                  //o4 = null
set('foo1');           //o4 = foo1
set(null,'foo2');      //o4 = foo2
set(null,null,'foo3'); //o4 = foo3
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