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in JQuery i m having an array like

(1,2,6,8)

I have already selected the first element that is 1 which i have saved in a JQuery variable

submitterid = 1

On clicking a link I am trying to get the next greatest element in the Array than what I have selected in the submitterid..

How can I achieve this?

Edit:

How to find the last element in this array in the code

  var previousId;

               $("#previous").click(function (){


			index = submitters.indexOf(submitterid),
			    nextId;
			if (index - 1 < submitters.length) {
			    previousId = submitters[index-1];
			} else {
			    // no ID index

			     // if i am having an array of 1,2,6,8 after moving to 1 from 8 to 6 - 2-1 i am trying to move to the last element of the array
			}

			alert(previousId);




	    });// previousId
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retaged from jquery to javascript. –  Elzo Valugi Sep 23 '09 at 7:51
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5 Answers

Why couldn't you do something like:

var arr = [3, 5, 8, 3].sort(function (a, b) { return a - b; } );
var val = arr.pop();

Any keep popping the array -- saying that the values don't need to stay in the array.

If you are randomly picking values and you need the next highest, then write the appropriate sorting function.

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4  
You don’t need to specify a comparison function since that’s the default comparison function. –  Gumbo Sep 23 '09 at 7:53
    
it was to demonstrate :) –  Justin Van Horne Sep 24 '09 at 6:34
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You want a counter:

function counter(arr) {
  this.arr = arr;
  this.index = 0;
}

counter.prototype.next = function() {
  return this.arr[this.index++];
}

You instantiate it and use it like:

var nums = new counter([1,2,3,4,5]);
nums.next() ; => 1
nums.next() ; => 2
nums.next() ; => 3
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Wouldn't this assume that the numbers are already sorted low->high? The numbers may be 1,6,3,9,7. –  Steven Sep 23 '09 at 8:07
    
I don't think the asker wanted to know how to sort; I think he meant they wanted the next largest index. His array is already sorted in the example. –  Jeff Ober Sep 23 '09 at 8:13
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Actually, there is no need to use any jquery-specific stuff for this, apart from the click event handling, just 'plain javascript' will do;

var myArray = [ 1, 2, 6, 8 ];
var submitterid = 1;

$(function() {
  $('a#id').click(function(event) {
    event.preventDefault();
    var greater = -1;
    // loop through array
    for (var i in myArray)
      // find numbers greater than the specified number
      if (i > submitterid)
        // find numbers closest to specified number
        if (i < greater || greater < 0)
          greater = i;

    if (greater < 0) {
      // no greater value found, do something
    } else {
      // next biggest value is in variable greater, do something with it
    }
  });

});
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You have to loop through the array. Try this untested code:

// Your test array.
var arrValues = [ "1", "2", "6", "8" ];

var low = 1;
var high = 2;

// Loop over each value in the array.
$.each( arrValues, function( intIndex, objValue ){

if (objValue > high)
  hight = objValue;

if (objValue < high)
  if (objValue > low)
    low = objValue

});

return low;
share|improve this answer
    
Justin's code was also a good idea. Sort the array, with highest in the end. Find position of last element, and return last element -1 –  Steven Sep 23 '09 at 7:51
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If your array is already sorted (see sort method), try this:

var arr = [1,2,6,8],
    submitterid = 1,
    index = arr.indexOf(submitterid),
    nextId;
if (index + 1 < arr.length) {
    nextId = arr[index+1];
} else {
    // no ID index
}
share|improve this answer
    
how to do the same for previous see my Edit .. –  Jasmine Sep 23 '09 at 8:49
    
@Aruna: Replace index + 1 < arr.length by index - 1 >= 0 and nextId = arr[index+1] with prevId = arr[index-1]. –  Gumbo Sep 23 '09 at 9:02
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