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I was attempting to implement a function that would "type" out a message to a user. Something like "T" - wait - "Th" - wait - "Tha" ... I came up with this function, but it would wait and then update all the letters at once (instead of updating individually):

var tu = 'Thank you'
var timing = 1000
for (var i=0; i<=tu.length; i++) {
    setTimeout(function (){input.text(tu.slice(0, i))}, timing)
    timing = timing + 1000
}

But when I did this (don't laugh), it worked..

setTimeout(function (){input.text('t')}, 400)
setTimeout(function (){input.text('th')}, 800)
setTimeout(function (){input.text('tha')}, 3000)
setTimeout(function (){input.text('than')}, 4000)
setTimeout(function (){input.text('thank')}, 5000)
setTimeout(function (){input.text('thank ')}, 6000)
setTimeout(function (){input.text('thank y')}, 7000)
setTimeout(function (){input.text('thank yo')}, 8000)
setTimeout(function (){input.text('thank you')}, 9000) 

Can anybody shed light on why the loop is behaving differently than my cut-paste job?

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1  
I did laugh, sorry, but it was very helpful for explaining what you were wanting to happen. –  Peter Olson Mar 23 '13 at 2:16

3 Answers 3

up vote 5 down vote accepted

This is an example of a weird scoping thing in JavaScript. The setTimeout is getting the reference to i, not the value of i. The for loop completes before any of the setTimeouts execute, so all of the setTimeouts will use the same value for i, namely, tu.length.

You need to use a closure to fix this:

var tu = 'Thank you'
var timing = 1000
for (var i = 1; i <= tu.length; i++) {
    (function (i) {
        setTimeout(function () {
            input.text(tu.slice(0, i))
        }, timing * i);
    })(i);
}

(also, as others noted, you have a boundary issue. I changed i < tu.length to i <= tu.length.)

You can see this in action on jsFiddle.

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1  
Good call. +1 :) –  Jonathan M Mar 23 '13 at 2:19
    
I always recommend avoiding multiple timeouts when a single interval will suffice, but this does answer the question as posed. –  Dave Mar 23 '13 at 2:36

This is because i is in a larger scope than your function, so it's getting to 10 from the loop and being used (as 10) in every timeout.

There are ways around that, but it's better to use setInterval for this kind of behaviour;

var tu = 'Thank you'
var timing = 1000
var i=0;
var tm=setInterval(function(){
    ++i;
    input.text(tu.slice(0, i));
    if(i>=tu.length){
        clearInterval(tm);
    }
},timing)
share|improve this answer
    
+1 I hadn't thought about using setInterval instead of setTimeout. You're right that it's much better suited for this purpose. –  Peter Olson Mar 23 '13 at 2:43

You lose scope to the i in the loop. You'll have to create a function that has access to the i when it goes out of scope. Here's how I would do it:

var tu = 'Thank you',
    timing = 1000;

function doPart(i) {
    setTimeout(function () {
        input.text(tu.slice(0, i));
    }, i*timing);
}

function printString() {
    var i;
    for (i=1; i<tu.length; i++) {
        doPart(i);
    }
}

printString();

Also, I think you meant tu.slice(0, i+1). Slice does from the start index up to, but not including, the end index.

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tu.slice(0, i+1) is the same as using i <= tu.length in the loop declaration and relying on i as the slice. Changing the slice does not effect the fact that all the text is getting update at the same time. –  Yeow_Meng Mar 23 '13 at 2:16
    
@Yeow_Meng - See edits. I changed a bunch of stuff... –  tjameson Mar 23 '13 at 2:17
    
@Yeow_Meng If you use tu.slice(0, i + 1) you will want to start i at 0 and make the end condition i < tu.length. If you use tu.slice(0, i) you will want to start i at 1 and make the end condition i <= tu.length. –  Peter Olson Mar 23 '13 at 2:21
    
@tjameson shoot - that's what you meant! the first slice would be [0,0] in the original code - Good eye! Your answer works but I have already awarded answer :( –  Yeow_Meng Mar 23 '13 at 2:30
    
Yeah, and the other user technically beat me with the closure idea. I missed that subtlety the first time, so I implemented it slightly differently (the way I'd actually do it in practice) than the other answer. –  tjameson Mar 23 '13 at 2:36

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