-1

I have a set of independent functions - fn1(), fn2(), fn3(), fn4().

I only need one function running at a time but the functions should toggle, on click of a single button, in a sequence fn1() [click] fn2() [click] fn3() [click] fn4() [click] back to fn1()

How do I approach this problem?

  • It's really not clear what you're asking. Are you saying that on each successive click of an element a different function should be run? – Rory McCrossan Aug 24 '17 at 8:42
  • @RoryMcCrossan exactly – Atul Kumar Aug 24 '17 at 8:44
  • I added an answer for you – Rory McCrossan Aug 24 '17 at 8:50
2
function fn1(){}
function fn2(){}
function fn3(){}

var i = 1;

function myclick(){
   if (i == 1)
      fn1();
   elseif (i == 2)
      fn2();
   elseif (i == 3) {
      fn3();
      i = 1;
   }

   i++;
}

Everytime you call myclick, it runs one fn and then adds 1 to i. The next time it runs the 2nd fn, followed by the 3rd.

  • 1
    Perfect. Thank you Jackson Ng – Atul Kumar Aug 24 '17 at 8:55
  • 1
    4-th click would not be fn1() but fn2() – natchkebiailia Aug 24 '17 at 8:59
  • 1
    @natchkebiailia solved that. i value should be 0 in the last else call – Atul Kumar Aug 24 '17 at 9:04
5

If I've understood what you're trying to do, you want to run a different function on successive clicks on a single element.

To do that you can put each function in an array, then run through each one using the modulo operator to return to the start of the array once the end is reached, something like this:

var functions = [function() {
  console.log('first');
}, function() {
  console.log('second');
}, function() {
  console.log('third');
}, function() {
  console.log('fourth');
}];

$('button').click(function() {
  var i = ($(this).data('i') + 1) || 0;
  functions[i % functions.length]();
  $(this).data('i', i);
});
  
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<button>Click me</button>

3

You can use a closure to keep track of which function you want to execute.

Html:

<button type="button" onclick="foo()"></button>

Js:

var foo = (function() {
    var funcIndex = 0;
    return function() {
        switch(funcIndex) {
            case 0: func1(); break;
            case 1: func2(); break;
            case 2: func3(); break;
            case 3: func4(); break;
        }

        funcIndex = (funcIndex+1) % 4;
    }
})();
2
<button onclick="toogle()">Click Me</button>  

Then

var index = 0;
var funcArr= [f1,f2,f3,f4];
function toogle(){
  funcArr[index]();
  index++;
  index = index%funcArr.length;
}

function f1(){console.log("f1")};
function f2(){console.log("f2")};
function f3(){console.log("f3")};
function f4(){console.log("f4")};

https://jsfiddle.net/8chvusaq/

2
arr=[fn1,fn2,fn3,fn4];
var i=0;
$("buttonId").click(function(){
   arr[i%4]();
   i++;
})
1

You can try this approach :

function fn1()
{
    //do something
    $("#myButton").off("click");
    $("#myButton").click(fn2);
}

function fn2()
{
    //do something
    $("#myButton").off("click");
    $("#myButton").click(fn3);
}

function fn3()
{
    //do something
    $("#myButton").off("click");
    $("#myButton").click(fn4);
}

function fn4()
{
    //do something
    $("#myButton").off("click");
    $("#myButton").click(fn1);
}

$("#myButton").click(fn1);
  • 2
    Just FYI you're adding new event handlers on each successive click, and you never remove any. On the fourth click all four event handlers will run – Rory McCrossan Aug 24 '17 at 9:05
  • @RoryMcCrossan you're right, I had that issue yesterday, I'll edit my post about it – Cid Aug 25 '17 at 7:26

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