Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have array of values and i want to set those values as placeholders to my input.

How to achieve this using jQuery.each() only because i solved my issue with this solution and it works perfectly.

I tried doing this to restart it but it's not working:

if(index==arr.length) index=0;

HTML code:

 Values : <input name='input' id='input' />

JS/jQuery code:

var arr = new Array();
for (var i = 0; i <= 5; i++) {
    arr.push('Value ' + i);//fill array with values
}

function eachChange(){
   var x=0;
   $.each(arr, function (index, value) {
       x++;
   setTimeout(function(){ 
       $('input').attr('placeholder', value);
      }, x * 1000); 
       if(index==arr.length) index=0;

 });   

}
eachChange();//call function

Fiddle: http://jsfiddle.net/charaf11/5ZQgX/

share|improve this question

3 Answers 3

up vote 1 down vote accepted

There are two issues with trying to restart a .each() loop this way. First and foremost, that's not how .each() really works. It's less a loop and more shorthand for calling the function on every element. If you gave that anonymous function a name (let's go with setPlaceholder()), the .each() call is essentially doing this:

setPlaceholder(0, arr[0]);
setPlaceholder(1, arr[1]);
setPlaceholder(2, arr[2]);
setPlaceholder(3, arr[3]);
setPlaceholder(4, arr[4]);
setPlaceholder(5, arr[5]);

The index value it passes to the function isn't used for looping purposes, so trying to set it to 0 won't have any impact on the .each() call.

The second issue is your if condition. It'll never actually fire, since the final "iteration" of the .each() call will have arr.length - 1 as its value, not arr.length.

I'm not sure why you want to have it keep looping, but if that's your goal, you could accomplish it like this:

function eachChange(){
    $.each(arr, function (index, value) {
        setTimeout(function() {
            $('input').attr('placeholder', value);
        }, index * 1000);
        if (index == arr.length - 1) {
            setTimeout(eachChange, (index + 1) * 1000);
        }
    });   

}
eachChange();//call function

What that should do is schedule eachChange() to be called again 1 second after the last placeholder update takes place. You can add in some other checks to limit the number of times it recurses, but if you want it to happen indefinitely that should do the trick.

Here's an updated fiddle demonstrating it.

share|improve this answer
    
Thanks for your reply :) –  Charaf jra Aug 30 '13 at 16:03

you can compare the index with the arr.length like this

var arr = new Array();
for (var i = 0; i <= 5; i++) {
    arr.push('Value ' + i);//fill array with values
}

function eachChange(){
$.each(arr, function (index, value) {
setTimeout(function(){ 
   $('input').attr('placeholder', value);
   //if it is the last element in arr setTimeout and call eachChange() 
   if(index>=arr.length-1){
        setTimeout(function(){  
           eachChange();     
        },1000);
   }

  }, index * 1000); 
});   

}
eachChange();     

http://jsfiddle.net/R274P/1/

share|improve this answer
    
Thanks for this solution,it works too –  Charaf jra Aug 30 '13 at 16:05

I dont think you can reset the counter of the $.each function, as it seems to encapsulate a simple for loop. You dont have access to the counter from the outside.

However, try:

function eachChange(initX){
   var x = initX || 0;
   $.each(arr, function (index, value) {
       x++;
       setTimeout(function(){ 
          $('input').attr('placeholder', value);
       }, x * 1000); 

       // Call yourself but pass current x
       if(index==arr.length) eachChange(x); 

   });   
}

Remove the initX part if you want x to reset, but i assume you want it to keep counting from where the previous loop finished.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.