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Is it possible? How to do this? When clicking on a button, I call function1. If the condition is true (i==1), the function1 pauses and the following code will only be executed after function2 is totally executed. Example:

function1(i){
    //some code here
    if(i == 1){
        function2(i);  // call function2 and waits the return to continue
    }
    //the following code
}

function2(i){
    //do something here and returns
}
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3  
so you think javascript is non-deterministic... ??? –  perilbrain Oct 6 '12 at 18:29
2  
The call of function2 from function1 is synchronous : it "waits" until function2 is finished. You have nothing special to do. –  dystroy Oct 6 '12 at 18:29
1  
Probably exposed to AJAX too early and it ruined their perception of programming. –  TheZ Oct 6 '12 at 18:30
    
You could try with a simple alert inside function2() , then an alert after the call to function2() has been made from function1() to see what happens! –  harsha Oct 6 '12 at 18:33

1 Answer 1

up vote 0 down vote accepted

Here you go:

function1(i){
    //some code here
    if(i == 1){
        function2(i);  // call function2 and waits the return to continue
    }
    //the following code
}

function2(i){
    //do something here and returns
}

In case you meant that function2 is actually async in some manner:

function1(i){
    //some code here
    if(i == 1){
        // call function2 and waits for return to continue
        function2(i, function() {
            // the following code
        });  
    }
    else {
        //the following code
    }
}

function2(i, callback){
    //do something async here and return when complete
    setTimeout(callback, 1000);
}
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hee hee, that is funny! But, i think this person is doing async and does not know it? if that is the case may I suggest adding a callback parameter –  robnardo Oct 6 '12 at 18:44
    
There is nothing async about their code... but I added an async example just in case. –  Bill Oct 6 '12 at 18:48
    
Works perfectly! The only problem is that I dont want to duplicate "the following code", but I know how to void this. Thanks for your supporting! –  David Sam Oct 6 '12 at 19:09
    
No problem. Welcome to Stack Overflow. When you find an answer helpful please make sure to upvote it and mark it as the answer. This way other people will know you've been helped and can the answer easier if they have a similar question. –  Bill Oct 6 '12 at 19:34
    
As I'm newer here, I'm still half-lost, but this site has been very helpful for me lately. –  David Sam Oct 7 '12 at 2:38

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